INTRODUCTION
[0001] The present invention relates to a method of expressing a functional protein using
a gene expression system, in combination with splice control sequences, said control
sequences providing a mechanism for sex-specific alternative splicing.
[0003] Alternative splicing also plays a key role in the regulation of gene expression in
many developmental processes ranging from sex determination to apoptosis (
Black, D. L. (2003) Annu. Rev. Biochem. 72, 291-336), and defects in alternative splicing have been linked to many human disorders (
Caceres, J. F. & Kornblihtt, A. R. (2002) Trends Genet. 18, 186-193). In general, alternative splicing is regulated by proteins that associate with the
pre-mRNA and function to either enhance or repress the ability of the spliceosome
to recognize the splice site(s) flanking the regulated exon (
Smith, C. W. & Valcarcel, J. (2000) Trends Biochem. Sci. 25, 381-388).
[0004] Whether a particular alternative exon will be included or excluded from a mature
RNA in each cell is thought to be determined by the relative concentration of a number
of positive and negative splicing regulators and the interactions of these factors
with the pre-mRNA and components of the spliceosome (
Smith, C. W. & Valcarcel, J. (2000) Trends Biochem. Sci. 25, 381-388).
[0005] Spliceosomes are large complexes of small nuclear RNA and protein particles (snRNPs)
which assemble with pre-mRNA to achieve RNA splicing, by removing introns from eukaryotic
nuclear RNAs, thereby producing mRNA which is then translated to protein in ribosomes.
[0006] Although at least 74% of human genes encode alternatively spliced mRNAs (
Johnson, J. M., Castle, J., Garrett-Engele, P., Kan, Z., Loerch, P. M., Armour C.
D., Santos, R., Schadt, E. E., Stoughton, R. & Shoemaker, D. D. (2003) Science 302,
2141-2144), relatively few splicing regulators have been identified.
SUMMARY OF THE INVENTION
[0008] The scope of the invention is as set out in the accompanying claims. In a first aspect,
the present invention provides a method of expressing a functional protein in an insect
via sex-specific alternative splicing of an RNA transcript, the method comprising
a) transcribing in said insect, a heterologous polynucleotide from an expression system
to provide an RNA transcript, the expression system comprising: a promoter operably
linked to a heterologous polynucleotide sequence encoding the functional protein,
defined between a start codon and a stop codon; and an intronic splice control sequence
comprising a protein binding domain; wherein the protein binding domain comprises
a DNA consensus sequence shown in SEQ ID NO: 1 or its RNA equivalent, wherein the
intronic splice control sequence comprises a splice donor sequence GT on its 5' end
(5'-GT) and wherein the intronic splice control sequence is flanked by a 5' guanine
(G) nucleotide; and wherein the intronic splice control sequence is 3' to the ATG
start codon of the heterologous polynucleotide sequence; b) alternatively splicing
the RNA transcript of the heterologous polynucleotide sequence, in cooperation with
a spliceosome, to yield a first spliced messenger RNA (mRNA) product, which does not
comprise a continuous open reading frame extending from the start codon to the stop
codon, and a further alternative spliced mRNA product, which comprises a continuous
open reading frame extending from the start codon to the stop codon, defining said
functional protein for expression.
[0009] The expression system may be DNA or RNA or a hybrid or combination of both. It is
envisaged that the system comprises both ribo- and deoxy-ribonucleotides, i.e. portions
of DNA and portions of RNA. These could correspond to different genetic elements,
such that the system is a DNA/RNA hybrid, with some functional elements provided by
DNA and others by RNA.
[0010] The mediation is in a sex-specific manner, and preferably also in a stage-specific,
germline-specific or tissue-specific manner. However, it is also preferred that a
combination of these four manners of mediation can be utilised. It is particularly
preferred that, when a combination of these modes is used, that this includes sex-specific
mediation. A particularly preferred example of such a combination is a combination
of sex-specific, tissue-specific and stage-specific mediation of alternative splicing.
[0011] The system is adapted for expression of a gene. The polynucleotide sequence to be
expressed comprises a coding sequence for a protein or polypeptide, i.e. at least
one exon, and preferably 2 or more exons, capable of encoding a polypeptide, such
as a protein or fragment thereof.
[0012] It will be understood that an exon is any region of DNA within a gene, that is present
in a mature RNA molecule derived from that gene, rather than being spliced out from
the transcribed RNA molecule. For protein coding genes, mature RNA molecules correspond
to mature mRNA molecules, which may encode one or more proteins or polypeptides. Exons
of many eukaryotic genes interleave with segments of non-coding DNA.
[0013] The at least one heterologous polynucleotide sequence encodes a functional protein,
defined between a start codon and a stop codon to be expressed in an insect. There
is disclosed at least one heterologous polynucleotide sequence which encodes or comprises
polynucleotides for interference RNA (RNAi), to be expressed in an insect.
[0014] These sequences, to be expressed in the insect, may also be referred to as sequences,
the expression of which is to be regulated in said insect.
[0015] Preferably, the polynucleotide sequence to be expressed comprises two or more coding
exons, being segments or sequences of polynucleotides that encode amino acids when
translated from mRNA. Preferably, the different exons are differentially spliced together
to provide alternative mRNAs. Preferably, said alternative spliced mRNAs have different
coding potential, i.e. encode different proteins or polypeptide sequences. Thus, the
expression of the coding sequence is regulated by alternative splicing in the above-mentioned
manners of mediation.
[0016] The polynucleotide sequence to be expressed may comprise polynucleotides for interference
RNA (RNAi). Such sequences are capable of providing, for instance, one or more stretches
of double-stranded RNA (dsRNA), preferably in the form of a primary transcript, which
in turn is capable of processing by the RNA Pol III-like enzyme "Dicer." Such stretches
include, for instance, stretches of single-stranded RNA that can form loops, such
as those found in short-hairpin RNA (shRNA), or with longer regions that are substantially
self-complementary.
[0017] Thus, where the system is DNA, the polynucleotides for interference RNA are deoxyribonucleotides
that, when transcribed into pre-RNA ribonucleotides, provide a stretch of dsRNA, as
discussed above.
[0018] Polynucleotides for interference RNA are particularly preferred when said polynucleotides
are positioned to minimise interference with alternative splicing. This may be achieved
by distal positioning of these polynucleotides from the alternative splicing control
sequences, preferably 3' to the control sequences. In another preferred embodiment,
substantially self-complementary regions may be separated from each other by one or
more splice control sequences, such as an intron, that mediate alternative splicing.
Preferably, the self-complementary regions are arranged as a series of two or more
inverted repeats, each inverted repeat separated by splice control sequence, preferably
an intron, as defined elsewhere.
[0019] In this configuration, different alternatively spliced transcripts may have their
substantially self-complementary regions separated by different lengths of non-self-complementary
sequence in the mature (post-alternative-splicing) transcript. It will be appreciated
that regions that are substantially self-complementary are those that are capable
of forming hairpins, for instance, as portions of the sequence are capable of base-pairing
with other portions of the sequence. These two portions do not have to be exactly
complementary to each other, as there can be some mismatching or toleration of stretches
in each portion that do not base-pair with each other. Such stretches may not have
an equivalent in the other portion, such that symmetry is lost and "bulges" form,
as is known with base-pair complementation in general.
[0020] In another preferred embodiment, one or more segment of sequence substantially complementary
to another section of the primary transcript is positioned, relative to the at least
one splice control sequence, so that it is not included in all of the transcripts
produced by alternative splicing of the primary transcript. By this method, some transcripts
are produced that tend to produce dsRNA while others do not; by mediation of the alternative
splicing, e.g. sex-specific mediation, stage-specific mediation, germline-specific
mediation, tissue-specific mediation, and combinations thereof, dsRNA may be produced
in a sex-specific, stage-specific, germline-specific or tissue-specific manner, or
combinations thereof.
[0021] The system is capable of expressing at least one protein of interest, i.e. said functional
protein to be expressed in an insect. Said at least one protein of interest may have
a therapeutic effect or may, preferably, be a marker, for instance DsRed, Green Fluorescent
Protein (GFP) or one or more of their mutants or variants, or other markers that are
well known in the art.
[0022] Most preferably, the functional protein to be expressed in an insect has a lethal,
deleterious or sterilizing effect. Where reference is made herein to a lethal effect,
it will be appreciated that this extends to a deleterious or sterilizing effect, such
as an effect capable of killing the insect
per se or its offspring, or capable of reducing or destroying the function of certain tissues
thereof, of which the reproductive tissues are particularly preferred, so that the
insect or its offspring are sterile. Therefore, some lethal effects, such as poisons,
will kill the insect or tissue in a short time-frame relative to their life-span,
whilst others may simply reduce the insect's ability to function, for instance reproductively.
[0023] A lethal effect resulting in sterilization is particularly preferred, as this allows
the insect to compete in the natural environment ("in the wild") with wild-type insects,
but the sterile insect cannot then produce viable offspring. In this way, the present
invention achieve a similar result to techniques such as the Sterile Insect Technique
(SIT) in insects, without the problems associated with SIT, such as the cost, danger
to the user, and reduced competitiveness of the irradiated insect.
[0024] Preferably, the system comprises at least one positive feedback mechanism, namely
at least functional protein to be differentially expressed, via alternative splicing,
and at least one promoter therefor, wherein a product of a gene to be expressed serves
as a positive transcriptional control factor for the at least one promoter, and whereby
the product, or the expression of the product, is controllable. Preferably, an enhancer
is associated with the promoter, the gene product serving to enhance activity of the
promoter
via the enhancer. Preferably, the control factor is the tTA gene product or an analogue
thereof, and wherein one or more tetO operator units is operably linked with the promoter
and is the enhancer, tTA or its analogue serving to enhance activity of the promoter
via tetO. It is preferred that functional protein encodes the tTAV or tTAF product and
preferably, the promoter is substantially inactive in the absence of the positive
transcriptional control factor. Suitable, preferably minimal, promoters for this system
can be selected from: hsp70, a P minimal promoter, a CMV minimal promoter, an Act5C-based
minimal promoter, a BmA3 promoter fragment, a promoter fragment from hunchback, an
Adh core promoter, and an Act5C minimal promoter, or combinations thereof.
[0025] In one embodiment, the functional protein is preferably an apoptosis-inducing factor,
such as the AIF protein described for instance in
Candé et al (Journal of Cell Science 115, 4727-4734 (2002)) or homologues thereof. AIF homologues are found in mammals and even in invertebrates,
including insects, nematodes, fungi, and plants, meaning that the AIF gene has been
conserved throughout the eukaryotic kingdom. Also preferred is Hid, the protein product
of the
head involution defective gene of
Drosophila melanogaster, or Reaper (Rpr), the product of the
reaper gene of
Drosophila, or mutants thereof. Use of Hid was described by
Heinrich and Scott (Proc. Natl Acad. Sci USA 97, 8229-8232 (2000). Use of a mutant derivative, Hid
Ala5 was described by
Horn and Wimmer (Nature Biotechnology 21, 64-70 (2003)). Use of a mutant derivative of Rpr, Rpr
KR, is described herein (see also White et al 1996, Wing et al., 2001, and Olson et
al., 2003). Both Rpr and Hid are pro-apoptotic proteins, thought to bind to IAP1.
IAP1 is a well-conserved anti-apoptotic protein. Hid and Rpr are therefore expected
to work across a wide phylogenetic range (Huang et al., 2002, Vernooy et al., 2000)
even though their own sequence is not well conserved.
[0027] It is also preferred that the functional protein itself a transcriptional transactivator,
such as the tTAV system described above.
[0028] It is preferred that the promoter can be activated by environmental conditions, for
instance the presence or absence of a particular factor such as tetracycline in the
tet system described herein, such that the expression of the gene of interest can be
easily manipulated by the skilled person. Alternatively, a preferred example of a
suitable promoter is the
hsp70 heat shock promoter, allowing the user to control expression by variation of the
environmental temperature to which the hosts are exposed in a lab or in the field,
for instance. Another preferred example of temperature control is described in
Fryxell and Miller (Journal of Economic Entomology 88, 1221-1232 (1995)).
[0029] Also preferred as a promoter is the
sryα embryo-specific promoter (Horn & Wimmer (2003) from
Drosophila melanogaster, or its homologues, or promoters from other embryo-specific or embryo-active genes,
such as that of the
Drosophila gene
slow as molasses (
slam), or its homologues from other species.
[0030] It is also preferred that the system comprises other upstream, 5' factors and/or
downstream 3' factors for controlling expression. Examples include enhancers such
as the fat-body enhancers from the
Drosophila yolk protein genes, and the
homology region (hr) enhancers from baculoviruses, for example
AcMNPV. It will also be appreciated that the RNA products will include suitable 5' and
3' UTRs, for instance.
[0031] The splice control sequence allows an additional level of control of protein expression,
in addition to the promoter and/or enhancer of the gene. For instance, tissue or sex-specific
expression in insect embryos only would be extremely difficult by conventional methods.
Promoters with this specificity are unknown, even in
Drosophila. However, using combinatorial control according to the present invention, an embryo-specific
promoter, for example
sryα, can be combined with a suitable alternative splicing system.
[0032] It is preferred that any combination of promoter and alternative splicing mechanism
is envisaged. The promoter is preferably specific to a particular protein having a
short temporal or confined spatial effect, for example a cell-autonomous effect.
[0033] Alternatively, it is preferred that the promoter may be specific for a broader class
of proteins or a specific protein that has a long-term and/or wide system effect,
such as a hormone, positive or negative growth factor, morphogen or other secreted
or cell-surface signalling molecule. This would allow, for instance, a broader expression
pattern so that a combination of a morphogen promoter with a stage-specific alternative
splicing mechanism could result in the morphogen being expressed only once a certain
life-cycle stage was reached, but the effect of the morphogen would still be felt
(i.e. the morphogen can still act and have an effect) beyond that life-cycle stage.
Preferred examples would be the morphogen/signaling molecules Hedgehog, Wingless/WNTs,
TGFβ/BMPs, EGF and their homologues, which are well-known evolutionarily-conserved
signalling molecules.
[0034] It is also envisaged that a promoter that is activated by a range of protein factors,
for instance transactivators, or which has a broad systemic effect, such as a hormone
or morphogen, could be used in combination with an alternative splicing mechanism
to achieve a tissue and sex-specific control or sex and stage-specific control, or
other combinations of stage-, tissue, germ-line- and sex-specific control.
[0035] It is also envisaged that more than one promoter, and optionally an enhancer therefor,
can be used in the present system, either as alternative means for initiating transcription
of the same protein or by virtue of the fact that the genetic system comprises more
than one gene expression system (i.e. more than one gene and its accompanying promoter).
[0036] Disclosed herein is a method of transformation, comprising expressing two or more
RNA molecules, derived from a single primary transcript, or substantially similar
primary transcripts, by alternative splicing, said two or more RNA molecules preferably
encoding different proteins or polypeptides, in an insect by contacting the insect
with the expression system and preferably inducing expression of the expression system.
Methods of introduction or transformation of the gene system and induction of expression
are well known in the art with respect to the relevant insect.
[0037] There is disclosed insects (i.e. transformants) transformed by the present system.
[0038] Where reference to a particular nucleotide or protein sequence is made, it will be
understood that this includes reference to any mutant or variant thereof, having substantially
equivalent biological activity thereto. Preferably, the mutant or variant has at least
85%, preferably at least 90%, preferably at least 95%, preferably at least 99%, preferably
at least 99.9%, and most preferably at least 99.99% sequence identity with the reference
sequences.
[0039] The sequences provided can tolerate some sequence variation and still splice correctly.
There are a few nucleotides known to be important. These are the ones required for
all splicing, e.g. as shown in Figure 34 below. The initial GU and the final AG of
the intron are particularly important and therefore preferred, as discussed elsewhere,
though ∼5% of introns start GC instead. This consensus sequence is preferred, although
it applies to all splicing, not specifically to alternative splicing. In Figure 34,
Pu = A or G; Py = C or U
[0040] Preferably, the system is or comprises a plasmid. As mentioned above, this can be
either DNA, RNA or a mixture of both. If the system comprises RNA, then it may be
preferable to reverse-translate the RNA into DNA by means of a Reverse Transcriptase.
If reverse transcription is required, then the system may also comprise a coding sequence
for the RT protein and a suitable promoter therefor. Alternatively, the RTase and
promoter therefore may be provided on a separate system, such as a virus. In this
case, the system would only be activated following infection with that virus. The
need to include suitable cis-acting sequences for the reverse transcriptase or RNA-dependent
RNA polymerase would be apparent to the person skilled in the art.
[0041] However, it is particularly preferred that the system is predominantly DNA and more
preferably consists only of DNA, at least with respect to the sequences to be expressed
in the insect.
[0042] It is disclosed that the at least one heterologous polynucleotide sequence to be
expressed in an insect is a polynucleotide sequence for interference RNA (RNAi), it
is particularly preferred that it is a polynucleotide sequence capable off encoding
a functional protein. The description will predominantly focus on polynucleotide sequences
encoding a functional protein, but it will be understood that this also refers to
polynucleotides for interference RNA (RNAi), unless otherwise apparent.
[0043] It will be understood that reference is made to start and stop codons between which
the polynucleotide sequence to be expressed in an insect is defined, but that this
does not exclude positioning of the at least one splice control sequence, elements
thereof, or other sequences, such as introns, in this region. In fact, it will be
apparent form the present description that the splice control sequence, can, in some
embodiments, be positioned in this region.
[0044] Furthermore, the splice control sequence, for instance, can overlap with the start
codon at least, in the sense that the G of the ATG can be, in some embodiments, be
the initial 5' G of the splice control sequence. Thus, the term "between" can be thought
of as referring to from the beginning (3' to the initial nucleotide, i.e. A) of the
start codon, preferably 3' to the second nucleotide of the start codon (i.e. T), up
to the 5' side of the first nucleotide of the stop codon. Alternatively, as will be
apparent by a simple reading of a polynucleotide sequence, the stop codon may also
be included.
[0045] The at least one heterologous polynucleotide sequence to be expressed in an insect
is a heterologous sequence. By "heterologous", it would be understood that this refers
to a sequence that would not, in the wild type, be normally found in association with,
or linked to, at least one element or component of the at least one splice control
sequence. For example, where the splice control sequence is derived from a particular
organism, and the heterologous polynucleotide is a coding sequence for a protein or
polypeptide, i.e. is a polynucleotide sequence encoding a functional protein, then
the coding sequence could be derived, in part or in whole, from a gene from the same
organism, provided that that the origin of at least some part of the transcribed polynucleotide
sequence was not the same as the origin of the at least one splice control sequence.
Alternatively, the coding sequence could be from a different organism and, in this
context, could be thought of as "exogenous". The heterologous polynucleotide could
also be thought of as "recombinant", in that the coding sequence for a protein or
polypeptide are derived from different locations, either within the same genome (i.e.
the genome of a single species or sub-species) or from different genomes (i.e. genomes
from different species or subspecies).
[0046] Heterologous can refer to a sequence other than the splice control sequence and can,
therefore, relate to the fact the promoter, and other sequences such as 5' UTR and/or
3'UTR can be heterologous to the polynucleotide sequence to be expressed in the insect,
provided that said polynucleotide sequence is not found in association or operably
linked to the promoter, 5' UTR and/or 3'UTR, in the wildtype, i.e. the natural context
of said polynucleotide sequence, if any.
[0047] It will be understood that heterologous also applies to "designer" or hybrid sequences
that are not derived from a particular organism but are based on a number of components
from different organisms, as this would also satisfy the requirement that the sequence
and at least one component of the splice control sequence are not linked or found
in association in the wildtype, even if one part or element of the hybrid sequence
is so found, as long as at least one part or element is not. Preferably, a portion
of at least 50 nucleotides of the hybrid sequence is not found in association with
the at least one component of the splice control sequence, more preferably 200 nucleotides
and most preferably 500 nucleotides.
[0048] It will also be understood that synthetic versions of naturally occurring sequences
are envisioned. Such synthetic sequences are also considered as heterologous, unless
they are of identical sequence to a sequence which would, in the wild type or natural
context, be normally found in association with, or linked to, at least one element
or component of the at least one splice control sequence.
[0049] This applies equally to where the heterologous polynucleotide is a polynucleotide
for interference RNA.
[0050] In one embodiment, where the polynucleotide sequence to be expressed comprises a
coding sequence for a protein or polypeptide, it will be understood that reference
to expression in an insect refers to the provision of one or more transcribed RNA
sequences, preferably mature mRNAs, but this may, preferably, also refer to translated
polypeptides in said insect.
[0051] RT-PCR, which demonstrates the presence of a transcript, not of a protein, may be
used to identify transcribed RNA sequences. This is also particularly useful when
the protein itself is not translated or is not functional or not identifiable by antibodies
raised against the naturally-occurring or wildtype protein, due to RNAi, post-translational
modification or distorted folding.
[0052] Where the polynucleotide sequence to be expressed comprises polynucleotides for interference
RNA, it will also be understood that reference to expression in an insect refers to
the interaction of the polynucleotides for interference RNA, or transcripts thereof,
in the RNAi pathway, for instance by binding of Dicer or formation of small interfering
RNA (siRNA). Indeed, it is particularly preferred that the polynucleotides for interference
RNA comprise siRNA sequences and are, therefore, preferably 20-25 nucleotides long,
especially where the organism is mammalian.
[0053] In insects and nematodes especially, it is preferred to provide portion of dsRNA,
for instance by hairpin formation, which can then be processed by the Dicer system.
Mammalian cells generally produce an interferon response against long dsRNA sequences,
so for mammalian cells it is more common to provide shorter sequences, such as siRNAs.
Antisense sequences or sequences having homology to microRNAs that are naturally occurring
RNA molecules targeting protein 3' UTRs are also envisaged as sequences for RNAi according
to an embodiment of the present invention.
[0054] Each splice control sequence in the system comprises at least one splice acceptor
site and at least one splice donor site. The number of donor and acceptor sites may
vary, depending on the number of segments of sequence that are to be spliced together.
Preferably, branch sites are included in each splice control sequence. A branch site
is the sequence to which the splice donor is initially joined, see figure 32, which
shows that splicing occurs in two stages, in which the 5' exon is separated and then
is joined to the 3' exon.
[0055] Referring to said figure, the A is the only essential nucleotide, and is, therefore,
preferably included. Without being bound by theory, it is believed that pre-mRNA splicing
proceeds via a lariat intermediate, just as it does in group II self-splicing. First,
cleavage occurs at the 5' junction - sometimes called the splice donor site. The phosphate
at the 5'end of the intron then becomes linked to the 2' OH of an adenine approximately
25 nucleotides upstream of the 3' end of the intron, which is sometimes called the
acceptor site. This A residue is called the branch point. The next step is that cleavage
occurs at the 3' splice junction and the 5' phosphate of the downstream exon is joined
to the 3' OH of the upstream exon.
[0056] It is particularly preferred that the manner or mechanism of alternative splicing
is sex-specific. Preferably, the splice control sequence is derived from a
tra intron. However, it is particularly preferred that the alternative splicing mechanism
is derived from the Medfly
transformer gene
Cctra, or from another ortholog or homolog of the
Drosophila transformer gene, preferably from C.
rosa, or
B. zonata especially one derived from a tephritid fruit fly.
[0057] It is also preferred that the splice control sequence is derived from the alternative
splicing mechanism of the
Actin-4 gene, in particular that from
Aedes spp. and most preferably from
AαActin-4, which is a gene from
Aedes/
Stegomyia aegypti which shows tissue, stage and sex-specific splicing.
[0058] Preferably, alternative splicing, particularly that mediated by
Actin-4, may add sequences that affect RNA translation or stability, for instance.
[0059] It is also preferred that the splicing mechanism comprises at least a fragment of
the
doublesex (
dsx) gene, preferably that derived from
Drosophila, B. mori, Pink Boll Worm, Codling Moth, or a mosquito, in particular
A. gambiae or especially
A. aegypti.
[0060] It is preferred that the splice control sequence and the heterologous polynucleotide
sequence encoding a functional protein, defined between a start codon and a stop codon.
There are also disclosed polynucleotides for interference RNA (RNAi), to be expressed
in an insect, which polynucleotides are provided in the form of a minigene construct
or a cassette exon.
[0061] This is particularly preferred when the splice control sequence is derived from
dsx (preferably minigene 1 as described in the Examples and represented in SEQ ID NO.
149 (exons are present at positions 1-135, 1311-2446 and 3900-4389 of SEQ ID NO. 149)
which was included in construct LA3491) or
Actin-4.
[0062] Particularly preferred examples of the present invention are provided in the Examples,
and can be selected from the group consisting of the plasmids or constructs, in particular
any of those according to any one of Figures 19-31, especially any of the plasmids
shown in Figs 16-18, 22-24, 26-32, 49, 52-55, and 61-69, and/or SEQ ID NOs 46-48,
50-56, 143-145 and 151-162.
[0063] Preferably, the functional protein to be expressed in an insect is tTAV, tTAV2 or
tTAV3.
[0064] Further proteins to be expressed in the insect are, or course envisaged, in combination
with said functional protein, preferably a lethal gene as discussed elsewhere.
[0065] A continuous ORF may be also be thought of as an uninterrupted ORF, i.e. a polynucleotide
sequence in mature mRNA, which does not include non-coding nucleotides, for instance
those having the potential to be translated into amino acids. In this definition,
it is preferred that the stop codon is not included.
[0066] In some embodiments, the at least one splice control sequence regulates the alternative
splicing by means of both intronic and exonic nucleotides. However, in one embodiment,
it is particularly preferred that the at least one splice control sequence is an intronic
splice control sequence. In other words, it is preferred that the at least one splice
control sequence is substantially derived from polynucleotides that form part of an
intron and are thus excised from the primary transcript by splicing, such that these
nucleotides are not retained in the mature mRNA sequence.
[0067] Therefore, intronic sequences can be thought of as distinct from "exonic" sequences,
which are retained in the processed (post-splicing) RNA molecule. Where the processed
RNA molecule encodes a protein or polypeptide sequence, and is capable of being translated,
i.e. has the correct structure and modifications such as a cap, and a polyadenylation
signal, for instance, it is known as mature or processed mRNA and some of the exonic
sequences then code for amino acids, when translated.
[0068] It will be understood that in alternative splicing, sequences may be intronic under
some circumstances (i.e. in some alternative splicing variants), but exonic under
other circumstances (i.e. in other variants). Thus, the at least one splice control
sequence of the present invention is preferably substantially derived from polynucleotides
that form part of an intron in at least one alternative splicing variant, i.e. in
either the first spliced mRNA product or the at least one alternatively spliced mRNA
product. Thus, introns or intronic sequences can be viewed as spliced out in at least
one transcript or transcript type.
[0069] For example, consider the tra intron from
C. capitata (Cctra intron), which is a particularly preferred example of an at least one splice
control sequence according to the present invention. According to Figure 2A of Pane
et al, reproduced as Figure 33, all 8 of the putative Tra/Tra2 binding sites highlighted
are in intronic sequence in the sense that they are in portions of sequence spliced
out in transcript F1, but on the other hand 6 out of the 8 are exonic in the sense
that they are in exons that are included or retained in either transcript M1 or M2,
or both. Thus, these Tra/Tra2 binding sites are intronic in the present sense as they
are capable of controlling alternative splicing, but are spliced out, i.e. not present,
in at least one alternative splicing variant, i.e. at least one mRNA that has been
spliced in an alternative manner from pre-RNA.
[0070] In "normal" (non-alternative) splicing and in alternative splicing, introns are generally
removed from the pre-RNA to form a spliced mRNA, which may then be translated into
a polypeptide, such as a protein or protein fragment, having an amino acid sequence.
Thus, it will be readily apparent to the skilled person how to determine those sequences
of the present system that are to be considered intronic, rather than exonic.
[0071] It will, of course be appreciated that only part of an mRNA is actually translated,
i.e. typically the part between the start codon and the stop codon, although it will
be understood that sometimes multiple starts and stops are present. Thus, when reference
is made herein to translation of an mRNA sequence, it will be appreciated that this
is referring to translation of the portion starting at the first nucleotide of the
start codon and ending after the last nucleotide before the start of the stop codon,
which may be considered as the coding portion.
[0072] As mentioned above, exonic sequences may be involved in the mediation of the control
of alternative splicing, but it is preferred that at least some intronic control sequences
are involved in the mediation of the alternative splicing. In other words, the gene
expression system of the present invention may also include splice control sequences
present in exons, as long as there is some intronic involvement of control. Particularly
preferred examples of these are splice control sequences derived from or containing
elements of the
dsx gene, where, without being bound by theory, it is thought that exonic sequences assist
in the mechanism of alternative splicing.
[0073] Thus, in some embodiments, the at least one splice control sequence does comprise
exonic sequence and it will be understood that this is envisaged by definitions used
to describe the present invention. Thus, as will be apparent, it is possible for some
nucleotides to be encompassed within the definition of the at least one splice control
sequence and also within the definition of a polynucleotide sequence encoding a functional
protein. In other words, the definition of these elements can overlap, such that certain
nucleotides can be covered by the definition of more than one element.
[0074] However, the skilled person will recognise that this is not unusual in molecular
biology, as nucleotides can often perform more than one role. For instance, in the
present invention, a nucleotide can form part of a coding sequence for a functional
protein, but could also form part of a sequence recognised and bound by a splicing
factor, an example of which the TRA protein or TRA/TRA complex, as discussed elsewhere.
This is not unusual as, for instance, some viruses have highly concentrated genome
where the same stretch of polynucleotides can code for two or even three different
proteins, each read in a different frame.
[0075] Of course, it may also be that the splice control sequence or sequences are solely
intronic, i.e. with no exonic influence. Indeed, this is particularly preferred.
[0076] In some embodiments, it is preferred that the at least one splice control sequence
is capable of being removed from the pre-RNA, by splicing. Preferably, the at least
one splice control sequence does not result in a frameshift in at least one splice
variant. Preferably this is a splice variant encoding a full-length functional protein.
In other words, at least the one splice control sequence preferably does not mediate
the removal of nucleotides that form part, or were intended to form part of, the polynucleotide
sequence encoding a functional protein, defined between a start codon and a stop codon
to be expressed in an insect. There are also disclosed polynucleotides for interference
RNA (RNAi), to be expressed in an insect. By this it is meant that nucleotides that
are excised by splicing, in at least one splice variant, are not nucleotides that
encode amino acids in the wild type form of the protein or gene. One or more splice
variants may have said nucleotides excised, but at least one variant must retain these
nucleotides, so that a frameshift is not induced in the at least one variant. These
removed nucleotides are those that are removed in addition to the sequences that are
normally spliced out such as the intron.
[0077] However, in view of the above, it is also envisaged that different splice variants
may result in the same sequence being read in different frames.
[0078] Interaction of the at least one splice control sequence with cellular splicing machinery,
e.g. the spliceosome, leads to or mediates the removal of a series of, preferably,
at least 50 consecutive nucleotides from the primary transcript and ligation (splicing)
together of nucleotide sequences that were not consecutive in the primary transcript
(because they, or their complement if the antisense sequence is considered, were not
consecutive in the original template sequence from which the primary transcript was
transcribed). Said series of at least 50 consecutive nucleotides comprises an intron.
This mediation acts preferably in a sex-specific, stage-specific, germline-specific
or tissue-specific manner, or combination thereof, such that equivalent primary transcripts
in different sexes, stages, tissue types, etc, tend to remove introns of different
size or sequence, or in some cases may remove an intron in one case but not another.
This phenomenon, the removal of introns of different size or sequence in different
circumstances, or the differential removal of introns of a given size or sequence,
in different circumstances, is known as alternative splicing. Alternative splicing
is a well-known phenomenon in nature, and many instances are known, see above.
[0079] In some preferred embodiments, the at least one splice control sequence is associated
with a heterologous open reading frame such that, in at least one splice variant,
the heterologous open reading frame is disrupted, e.g. by a stop codon or frameshift,
while in at least one alternative splice variant the heterologous open reading frame
is not disrupted. Transcripts of the second type encode or potentially encode a functional
protein, whereas those of the first type encode a protein with altered, disrupted
or even no function, activity or stability relative to those of the second type.
[0080] In general, it will be apparent to the person skilled in the art that the heterologous
open reading frame may itself be a composite or fusion of sequences from various sources.
Splicing to produce a functional protein may still produce an altered protein relative
to the prototype heterologous open reading frame, for example if the inserted alternatively
spliced intron includes sequence that is exonic in all alternative splicing forms,
and therefore retained in mature mRNAs of the second type. However, it is particularly
preferred that at least one transcript removes all, or substantially all, of the inserted
alternatively spliced sequence, such that the heterologous open reading frame is restored,
or substantially restored, to intact form, with little or no sequence endogenously
associated with the intron remaining in the mature mRNA. Endogenous is used here in
contrast to heterologous, so it will be understood that this refers to a sequence
that would, in the wild type, be normally found in association with, or linked to,
at least one element or component of the at least one splice control sequence.
[0081] Alternatively, one or more transcripts may remove additional nucleotides, so that
the heterologous open reading frame is disrupted, not by the insertion of extra nucleotides
(for example stop codon or frame shift, but also potentially coding sequence that
disrupts the function), but rather by deletion of nucleotides from the heterologous
open reading frame, for example in such a way as to induce a frameshift. One or more
splice variants may have said nucleotides excised, but at least one variant must retain
these nucleotides, so that a frameshift is not induced in the at least one variant.
These removed nucleotides are those that are removed in addition to the sequences
that are normally spliced out such as the intron, where an intronic sequence may be
considered as one that forms part of an intron in at least one alternative splicing
variant of the natural analogue.
[0082] When exonic nucleotides are to be removed, then these must be removed in multiples
of three, if it is desired to avoid to avoid a frameshift, but as a single nucleotide
or multiples of two (that are not also multiples of three) if it is desired to induce
a frameshift. It will be appreciated that if only one or certain multiples of two
nucleotides are removed, then this could lead to a completely different protein sequence
being encoded at or around the splice junction of the mRNA.
[0083] This is particularly the case in an embodiment of the system where cassette exons
are used to interrupt an open reading frame in some splice variants but not others,
such as in, for example, tra, especially Cctra.
[0084] In another preferred embodiment of the present invention, all or part of an open
reading frame is on a cassette exon, for example some Dsx embodiments derived from
Aedes, are provided with, for instance, a tTAV coding region on a cassette exon that is
only present in female-specific splice variants.
[0085] Where mediation of alternative splicing is sex-specific, it is preferred that the
splice variant encoding a functional protein to be expressed in an insect is the F1
splice variant, i.e. a splice variant found only or predominantly in females, and
preferably is the most abundant variant found in females, although this is not essential.
Correspondingly for configurations where all or part of a functional open reading
frame is on a cassette exon, it is preferred that this cassette exon is included in
transcripts found only or predominantly in females, and preferably such transcripts
are, individually or in combination, the most abundant variants found in females,
although this is not essential.
[0086] In one preferred embodiment, sequences are included in a hybrid or recombinant sequence
or construct which are derived from naturally occurring intronic sequences which are
themselves subject to alternative splicing, in their native or original context. Therefore,
an intronic sequence may be considered as one that forms part of an intron in at least
one alternative splicing variant of the natural analogue. Thus, sequences corresponding
to single contiguous stretches of naturally occurring intronic sequence are envisioned,
but also hybrids of such sequences, including hybrids from two different naturally
occurring intronic sequences, and also sequences with deletions or insertions relative
to single contiguous stretches of naturally occurring intronic sequence, and hybrids
thereof. Said sequences derived from naturally occurring intronic sequences may themselves
be associated, in the invention, with sequences not themselves part of any naturally
occurring intron. If such sequences are transcribed, and preferably retained in the
mature RNA in at least one splice variant, they may then be considered exonic.
[0087] It will also be appreciated that reference to a "frame shift" could also refer to
the direct coding of a stop codon, which is also likely to lead to a non-functioning
protein as would a disruption of the spliced mRNA sequence caused by insertion or
deletion of nucleotides. Production from different splice variants of two or more
different proteins or polypeptide sequences of differential function is also envisioned,
in addition to the production of two or more different proteins or polypeptide sequences
of which one or more has no predicted or discernable function. Also envisioned is
the production from different splice variants of two or more different proteins or
polypeptide sequences of similar function, but differing subcellular location, stability
or capacity to bind to or associate with other proteins or nucleic acids.
[0088] The at least one splice control sequence is intronic and comprises on its 5' end
a guanine (G) nucleotide. In other words, the 5' nucleotide of the splice control
sequence, 3' to the splice donor site, and preferably at the interface or junction
of the exon with the splice control sequence, is Guanine (G), in the pre-RNA, or C
in an antisense DNA sequence corresponding thereto.
[0089] Furthermore, the adjacent nucleotide (3' to said G) is preferably Cytosine (C) in
the pre-RNA, or a corresponding G in a DNA sequence, but is most preferably Uracil
(U) in the pre-RNA, or a corresponding A in a DNA antisense sequence. Thus, the two
5' nucleotides of the splice control sequence are preferably 5'GT with respect to
the DNA sense strand, 5'-GU in the primary transcript.
[0090] Preferably, at least one intronic splice control sequence also comprises on its 3'
end a 3' Guanine nucleotide and preferably AG-3' at the junction of the splice acceptor
site with the exon, for instance, see Figure 34.
[0091] Preferably, the flanking sequence 5' to the splice donor site in the system comprises
5'-TG, so that the sequence can be represented 5'-TG-*-splice control sequence-**-3',
where * represents the splice donor site and ** represents the splice acceptor site.
[0092] Preferably, the splice control sequence is also flanked on its 3' side by a G nucleotide,
and most preferably by GT nucleotides, such that the sequence could be represented
as: 5'-TG-*-splice control sequence-**-GT-3'. It will be appreciated that this is
the sense strand DNA sequence (TG). Thus, the transcribed pre-RNA will read UG for
instance, where U replaces T.
[0093] Derivatives of Guanine or Thymine having the same function are also envisaged.
[0094] It is particularly preferred that the splicing is sex-specific and further mediated
or controlled by binding of the TRA protein or TRA/TRA2 protein complex, or homologues
thereof. In insects, for instance, the TRA protein is differentially expressed in
different sexes. In particular, the TRA protein is known to be present largely in
females and, therefore, mediates alternative splicing in such a way that a coding
sequence is expressed in a sex-specific manner, i.e. that in some cases a protein
is expressed only in females or at a much higher level in females than in males or,
alternatively, in other cases a protein is expressed only in males, or at a much higher
level in males than in females. Whilst it is preferred that the protein is expressed
only in males, it is particularly preferred that the protein is expressed only in
females, however. The mechanism for achieving this sex-specific alternative splicing
mediated by the TRA protein or the TRA/TRA-2 complex is known and is discussed, for
instance, in
Pane et al (Development 129, 3715-3725 (2002)).
[0095] Preferably, the at least one splice control sequence comprises, and more preferably
consists of, the
tra intron derived from the
tra gene of
Ceratitis capitata (
Cctra), which has one alternatively spliced region. In the F1 transcript, as illustrated
by Figure 33 (Figure 2A of Pane et al (2002)
supra), this is the first intron. Homologues of the
tra gene in other species, such as
Bactrocera oleae, Ceratitis rosa, Bactrocera zonata and
Drosophila melanogaster also have alternatively spliced regions in a similar location within the
tra coding sequence.
tra introns derived from these insects are also particularly preferred.
[0096] The splicing pattern in
Cctra in particular is well conserved, with those transcripts found in males containing
additional exonic material relative to the F1 transcript, such that these transcripts
do not encode full-length, functional Tra protein. By contrast, the F1 transcript
does encode full-length, functional Tra protein; this transcript is substantially
female-specific at most life-cycle stages, though it is speculated that very early
embryos of both sexes may contain a small amount of this transcript. We describe the
sequence spliced out of the F1 transcript, but not the male-specific or non-sex-specific
transcripts, as the tra intron, or even the tra F1 intron. Thus the version of this
sequence found in the
Cctra gene is the Cctra intron.
[0097] Thus the
tra gene is regulated in part by sex-specific alternative splicing, while its key product,
the Tra protein, is itself involved in alternative splicing. In insects, sex-specific
alternative splicing mediated by the TRA protein, or a complex comprising the TRA
and TRA2 proteins, include Dipteran splice control sequences derived from the
doublesex (dsx) gene and also the
tra intron itself, although this would exclude the
tra intron from
Drosophila (
Dmtra), which is principally mediated by the
Sxl gene product in
Drosophila, rather than TRA or the TRA/TRA2 complex.
[0098] Outside of
Drosophila, the
Sxl gene product is not differentially expressed in the different sexes.
Sxl is not thought to act in the mediation of sex-specific alternative splicing in non-Drosophilid
insects.
[0099] Examples of the TRA protein that binds to the binding protein sites (the nucleotide
sequences specifically recognised by the TRA protein) in the
tra intron are preferably from Diptera, preferably from the family Tephritidae, more
preferably from the genera
Ceratitis, Anastrepha or
Bactrocera. However, it is also envisaged that other Dipterans, such as Drosophilids or mosquitoes
of the various forms discussed below, are also capable of providing the TRA protein
or homologues thereof that are capable of binding to the appropriate sites on the
splice control sequences derived from
dsx gene, the
tra gene or the
tra intron, i.e. the alternatively spliced tra intron completely removed in the F1 transcript,
even in those cases, such as
Drosophila, where the natural tra gene (
Dmtra) is not itself regulated by TRA protein. In some embodiments, the "tra intron" may
be defined as a splice control sequence wherein alternative splicing of the RNA transcript
is regulated by TRA, for instance binding thereof, alone or in combination (i.e. when
complexed) with TRA2. This excludes the
tra intron from Drosophila.
[0100] It is particularly preferred that the splice control sequences are derived from the
tra intron. Said
tra intron may be derived, as discussed elsewhere, from
Ceratitis, Anastrepha or
Bactrocera. The
Ceratitis capitata tra intron from the
transformer gene was initially characterised by Pane et al (2002),
supra. However, it will be appreciated that homologues exist in other species, and can
be easily identified in said species and also in their various genera. Thus, when
reference is made to
tra it will be appreciated that this also relates to
tra homologues in other species, especially in
Ceratitis, Anastrapha or
Bactrocera species.
[0101] By "derived" it will be understood that, using reference to the
tra intron, this refers to sequences that approximate to or replicate exactly the
tra intron, as described in the art, in this case by Pane et al (2002),
supra. However, it will be appreciated that, as these are intronic sequences, that some
nucleotides can be added or deleted or substituted without a substantial loss in function.
[0102] Preferred examples of this include the dsx intron, preferably provided in the form
of a minigene. In this instance, it may be preferable to delete, as we have done in
the Examples, sizable amounts from alternatively spliced introns, e.g. 90% or more
of an intron in some cases, whilst still retaining the alternative splicing function.
Thus, whilst large deletions are envisioned, it is also envisaged that smaller, e.g.
even single nucleotide insertions, substitutions or deletions are also preferred.
[0103] The exact length of the splice control sequence derived from the
tra intron is not essential, provided that it is capable of mediating alternative splicing.
In this regard, it is thought that around 55 to 60 nucleotides is the minimum length
for a modified
tra intron, although the wild type
tra intron (F1 splice variant) from
C. capitata is in the region of 1345 nucleotides long.
[0104] It is particularly preferred that the full length 1345 ntd sequence of
Cctra is used.
[0105] As with all nucleotide sequences discussed herein, it is preferred that a certain
degree of sequence homology is envisaged, unless otherwise apparent. Thus, it is preferred
that the splice control sequence has at least 80% sequence homology with the reference
SEQ ID NO., preferably at least 80% sequence homology with the reference SEQ ID NO.,
preferably at least 80% sequence homology with the reference SEQ ID NO., more preferably
at least 90% sequence homology with the reference SEQ ID NO., more preferably at least
95% sequence homology with the reference SEQ ID NO., even more preferably at least
99% sequence homology with the reference SEQ ID NO., and most preferably at least
99.9% sequence homology with the reference SEQ ID NO. A suitable algorithm such as
BLAST may be used to ascertain sequence homology. If large amounts of sequence are
deleted cf the wildtype, then the sequence comparison may be over the full length
of the wildtype or over aligned sequences of similar homology.
[0106] However, it will be understood that despite the above sequence homology, certain
elements, in particular the flanking nucleotides and splice branch site must be retained,
for efficient functioning of the system. In other words, whilst portions may be deleted
or otherwise altered, alternative splicing functionality or activity, to at least
30%, preferably 50%, preferably 70%, more preferably 90%, and most preferably 95%
compared to the wildtype should be retained. This could be increased cf the wildtype,
as well, by suitably engineering the sites that bind alternative splicing factors
or interact with the spliceosome, for instance.
[0107] In particular, it is preferred that where the splice control sequence comprises a
modified TRA intron, this comprises at least 20 to 40 base pairs from the 5' and,
preferably, so the 3' end of said intron. Furthermore, it is preferred that at least
3 or 4 and most preferably, at least 5, preferably 6, more preferably 7 and most preferably
all 8 of the 8 putative TRA binding domains of the
C. capitata tra intron, as taught by Pane et al (2002), or homologues thereof, are provided. Of course,
if further such sites are discovered in due course, then it is envisaged that the
splice control sequence could include more than 8 sites. In fact, it is envisaged
that the more than 8 sites may be engineered in to the splice control sequence and
that alternative splicing may be regulated in this way, especially if some sites are
bound with differing affinities leading to different alternative splicing outcomes.
[0108] A consensus sequence for the putative TRA binding domains of the
C. capitata tra intron is given below as SEQ ID NO 1, a DNA sequence, although the corresponding
RNA equivalent is also preferred.
[0109] The preferred consensus sequences is 1: TC
WWCRATCAACA (SEQ ID NO. 1), where W = A or T and R = A or G.
[0110] Similar considerations apply to
doublesex, where the consensus sequence for the TRA protein is also that given in SEQ ID NO.
1, as a protein complex comprising the Tra and TRA2 proteins is a key regulator of
alternative splicing of
doublesex, as it is for
tra homologues (though not the
tra homologues found in Drosophilids).
[0111] As mentioned above, the splice control sequences are preferably derived from the
tra intron, preferably from the family
Tephritidae. It is particularly preferred that the
tra intron is derived from
B. zonata or, preferably, from other non-Drosophilid fruit flies. However, it is particularly
preferred that the
tra intron is derived from the
Ceratitis genus, in particular
C. rosa and, most preferably, C.
capitata. These are more widely known as the Natal and Mediterranean fruit flies, respectively.
[0112] With regard to the
tra intron derived from
B. zonata, we have shown that this can lead to sex-specific alternative splicing in transgenic
Mexfly (
Anastrapha ludens) and in transgenic Medfly (
C. capitata). We have also shown that a variety of proteins can be expressed in a sex-specific
manner via alternative splicing, including tTAV 3 and Rpr.
[0113] In relation to the
tra intron derived from C.
rosa, we have successfully provided alternative splicing in a sex-specific manner of a
transgene in Medfly.
[0114] With regard to the
tra intron derived from C.
capitata (Medfly), we have shown that this can mediate sex-specific splicing in transgenic
Medfly, and other Tephritids, and other Tephritids such as
A. ludens (Mexfly). Not only that, we have shown that this intron can work successfully across
a whole range of insects and, in particular, Dipterans. Indeed, we have shown that
the TRA intron from
C. capitata (referred to as
Cctra) can provide sex-specific alternative splicing in transgenic Drosophila, which is
not a Tephritid, and also in the mosquito
Aedes aegypti. Although mosquitoes are Diptera, they diverged from Drosophila and the Tephritids
about 250 million years ago and, therefore, are much more distantly related than Drosophilids
are to Tephritids, for which the divergence time has been estimated as 120-150 million
years. Thus, this shows the broad applicability of the present invention across a
wide range of insects.
[0115] With regard to splice control sequences derived from the
dsx intron, we have also shown that this can be used to alternatively splice, in a sex-specific
manner, in a broad range of insects. Accordingly, it is particularly preferred that
the dsx is derived from
Bombyx mori (silk moth), Pectinophora gossypiella (Pink Bollworm) Pectinophora gossypiella,
Cydia. pomonella (codling moth), Drosophila, and mosquitoes such as
Anopheles sp., for instance
A. gambiae. Particularly preferred mosquitoes include
Stegomyia spp., particularly
S. aegypti (also known as
Aedes aegypti).
[0116] Indeed, in
A. aegypti, we have shown a considerable number of DNA constructs, which are capable of providing
sex-specific alternative splicing.
[0117] It will be appreciated that the system or construct is preferably administered as
a plasmid, but generally tested after integrating into the genome. Administration
can be by known methods in the art, such as parenterally, intra-venous intra-muscularly,
orally, transdermally, delivered across a mucous membrane, and so forth. Injection
into embryos is particularly preferred. The plasmid may be linearised before or during
administration, and not all of the plasmid may be integrated into the genome. Where
only part of the plasmid is integrated into the genome, it is preferred that this
part include the at least one splice control sequence capable of mediating alternative
splicing.
[0118] Preferably, the polynucleotide expression system is a recombinant dominant lethal
genetic system, the lethal effect of which is conditional. Suitable conditions include
temperature, so that the system is expressed at one temperature but not, or to a lesser
degree, at another temperature, for example. The lethal genetic system may act on
specific cells or tissues or impose its effect on the whole insect. Systems that are
not strictly lethal but impose a substantial fitness cost are also envisioned, for
example leading to blindness, flightlessness (for insects that could normally fly),
or sterility. Systems that interfere with sex determination are also envisioned, for
example transforming or tending to transform all or part of an insect from one sexual
type to another. It will be understood that all such systems and consequences are
encompassed by the term lethal as used herein. Similarly, "killing", and similar terms
refer to the effective expression of the lethal system and thereby the imposition
of a deleterious or sex-distorting phenotype, for example death.
[0119] More preferably, the polynucleotide expression system is a recombinant dominant lethal
genetic system, the lethal effect of which is conditional and is not expressed under
permissive conditions requiring the presence of a substance which is absent from the
natural environment of the insect, such that the lethal effect of the lethal system
occurs in the natural environment of the insect
[0120] In other words, the coding sequences encode a lethal linked to a system such as the
tet system described in
WO 01/39599 and/or
WO2005/012534.
[0121] Indeed it is preferred that the expression of said lethal gene is under the control
of a repressible transactivator protein. It is also preferred that the gene whose
expression is regulated by alternative splicing encode a transactivator protein such
as tTA. This is not incompatible with the regulated protein being a lethal. Indeed,
it is particularly preferred that it is both. In this regard, we particularly prefer
that the system includes a positive feedback system as taught in
WO2005/012534.
[0122] Preferably, the lethal effect of the dominant lethal system is conditionally suppressible.
[0123] There is disclosed suitable organisms under which the present system can be used
include mammals such as mice, rats and farm animals. Also disclosed are fish, such
as salmon and trout. Plants are also disclosed, but it is particularly preferred that
the host organism is an insect, preferably a Dipteran or tephritid. Preferably, the
organism is not a human, preferably non-mammalian, preferably not a bird, preferably
an invertebrate, preferably an arthropod.
[0124] In particular, it is preferred that the insect is from the Order Diptera, especially
higher Diptera and particularly that it is a tephritid fruit fly, preferably Medfly
(
Ceratitis capitata), preferably Mexfly (
Anastrepha ludens), preferably Oriental fruit fly (
Bactrocera dorsalis), Olive fruit fly (
Bactrocera oleae), Melon fly (
Bactrocera cucurbitae), Natal fruit fly (
Ceratitis rosa), Cherry fruit fly (
Rhagoletis cerasi), Queensland fruit fly (
Bactrocera tyroni)
, Peach fruit fly (
Bactrocera zonata) Caribbean fruit fly (
Anastrepha suspensa) or West Indian fruit fly (
Anastrepha obliqua)
. It is also particularly preferred that the host insect is a mosquito, preferably
from the genera
Stegomyia, Aedes,
Anopheles or
Culex. Particularly preferred are
Stegomyia aegyptae, also known as
Aedes aegypti, Stegomyia albopicta (also known as
Aedes albopictus),
Anopheles stephensi, Anopheles albimanus and
Anopheles gambiae.
[0125] Within Diptera, another preferred group is Calliphoridae, particularly the New world
screwworm (
Cochliomyia hominivorax), Old world screwworm (
Chiysomya bezziana) and Australian sheep blowfly (
Lucilia cuprina). Lepidoptera and Coleoptera are also preferred, especially moths, including codling
moth (
Cydia pomonella), and the silk worm (
Bombyx mori), the pink bollworm (
Pectinophora gossypiella), the diamondback moth (
Plutella xylostella), the Gypsy moth (
Lymantria dispar), the Navel Orange Worm (
Amyelois transitella), the Peach Twig Borer (
Anarsia lineatella) and the rice stem borer (
Tryporyza incertulas), also the noctuid moths, especially Heliothinae. Among Coleoptera, Japanese beetle
(
Popilla japonica), White-fringed beetle (
Graphognatus spp.), Boll weevil (
Anthonomous grandis), corn root worm (
Diabrotica spp) and Colorado potato beetle (
Leptinotarsa decemlineata) are particularly preferred. Preferably, the insect is not a Drosphilid, especially
Dm. Thus, in some embodiments, expression in Drosophilids, especially Dm is excluded.
In other embodiments, the splice control sequence is not derived from the
tra intron of a Drosphilid, especially Dm.
[0126] It is preferred that the expression of the heterologous polynucleotide sequence leads
to a phenotypic consequence in the insect. It is particularly preferred that the functional
protein is not beta-galactosidase, but can be associated with visible markers (including
fluorescence), viability, fertility, fecundity, fitness, flight ability, vision, and
behavioural differences. It will be appreciated, of course, that, in some embodiments,
the expression systems are typically conditional, with the phenotype being expressed
only under some, for instance restrictive, conditions.
[0127] In a further aspect, there is also provided a method of population control of an
insect in a natural environment therefor, comprising:
- i) breeding a stock of the insect,
the insect carrying a gene expression system comprising a system according to the
present invention which is a dominant lethal genetic system,
- ii) distributing the said stock animals into the environment at a locus for population
control; and
- iii) achieving population control through early stage lethality by expression of the
lethal system in offspring that result from interbreeding of the said stock individuals
with individuals of the opposite sex of the wild population.
[0128] Preferably, the early stage lethality is embryonic or before sexual maturity, preferably
early in development, most preferably in the early larval or embryonic life stages.
[0129] Preferably, the lethal effect of the lethal system is conditional and occurs in the
said natural environment
via the expression of a lethal gene,
the expression of said lethal gene being under the control of a repressible transactivator
protein,
the said breeding being under permissive conditions in the presence of a substance,
the substance being absent from the said natural environment and able to repress said
transactivator.
[0130] Preferably, the lethal effect is expressed in the embryos of said offspring. There
is disclosed an organism, which is an invertebrate multicellular animal or is as discussed
elsewhere.
[0131] Also disclosed is a method of biological control, comprising:
- i) breeding a stock of males and female organisms transformed with the expression
system according to the present invention under permissive conditions, allowing the
survival of males and females, to give a dual sex biological control agent;
- ii) optionally before the next step imposing or permitting restrictive conditions
to cause death of individuals of one sex and thereby providing a single sex biological
control agent comprising individuals of the other sex carrying the conditional lethal
genetic system;
- iii) releasing the dual sex or single sex biological control agent into the environment
at a locus for biological control; and
- iv) achieving biological control through expression of the genetic system in offspring
resulting from interbreeding of the individuals of the biological control agent with
individuals of the opposite sex of the wild population.:
[0132] Preferably, there is sex-separation prior to organism distribution by expression
of a sex specific lethal genetic system.
[0133] Preferably, the lethal effect results in killing of greater than 90% of the target
class of the progeny of matings between released organisms and the wild population.
[0134] Also provided is a method of sex separation comprising:
- i) breeding a stock of male and female insects transformed with the gene expression
system under permissive or restrictive conditions, allowing the survival of males
and females; and
- ii) removing the permissive or restrictive conditions to induce the lethal effect
of the lethal gene in one sex and not the other by sex-specific alternative splicing
of the lethal gene.
[0135] Preferably, the lethal effect results in killing of greater than 90% of the target
class of the progeny of matings between released insects and the wild population.
[0136] Also disclosed is a method or biological or population control comprising;
- i) breeding a stock of male and female organisms transformed with the gene expression
system under permissive or restrictive conditions, allowing the survival of males
and females;
- ii) removing the permissive or restrictive conditions to induce the lethal effect
of the lethal gene in one sex and not the other by sex-specific alternative splicing
of the lethal gene to achieve sex separation;
- iii) sterilising or partially sterilising the separated individuals and
- iv) achieving said control through release of the separated sterile or partially sterile
individuals in to the natural environment of the organism.
[0137] Preferably, the sterilising is achieved through the use of ionising radiation. In
general, however, methods avoiding irradiation, as used in the Sterile Insect Technique
(SIT) are especially preferred and have many cost and health advantages over methods
associated with or followed by the use of radiation.
[0138] Also disclosed is a method to selectively eliminate females from a population. The
equivalent for males is also envisaged.
[0139] Methods of sex separation are hugely important commercially in, for example silk
worms, where males produce more and better silk than females. Thus, methods of sex
separation that eliminate females and, in particular female silk worms are particularly
preferred.
[0140] It is also envisaged that the functional protein may be a expressed differentially,
but detectably in more than one splice variant and preferably, therefore, in both
sexes, for instance. Such examples include a fluorescent protein, such as eGFP, CopGFP
and DsRed2. This may be used in a method of non-lethal sex separation or sorting,
so that one can separate the two types without killing either of them
[0141] We have also surprisingly discovered that the positioning of the splice control sequence
can be altered and better results obtained. Preferably, the splice control sequence
is the "first" splice control sequence, when read from the promoter, in 5' to 3' direction
We have found that in certain constructs with an intron in the 5' UTR of the system
that this leads to reduced levels or alternatively spliced protein expression mediated
by the splice control sequence of the present invention.
[0142] Preferably, the splice control sequence is 3' to the start codon. Preferably, the
splice control sequence is inserted within the first exon, i.e. the stretch of sequence
immediately 3' to the transcription start site. It will be understood that such terms
may refer to the DNA sequence which encodes the transcript, or to the RNA transcript
itself.
[0143] Where the splice control sequence is 3' to the start codon, it is preferred that
it is also 5' to the first in-frame stop codon (that is 3' to and in frame with the
start codon), so that alternative splicing yields transcripts that encode different
protein or polypeptide sequences. Thus in a preferred embodiment, the construct or
polynucleotide sequence comprises the following elements in 5' to 3' order, with respect
to the sense strand or primary transcript: transcription start, translation start,
intron capable of alternative splicing, coding sequence for all or part of a protein,
stop codon.
[0144] The splice control sequence may be defined as preferably up to and including the
5' G (GT/C) and its 3' G equivalent, especially in
tra, but as mentioned above, this can include some exonic sequence and therefore, could
include the 3' most (last) nucleotide of the exon (i.e. G).
[0145] It is particularly preferred that the splice control sequence is immediately adjacent,
in the 3' direction, the start codon, so that the G of the ATG is 5' to the start
(5' end) of the splice control sequence. This is particularly advantageous as it allows
the G of the ATG start codon to be the 5'G flanking sequence to the splice control
sequence.
[0146] Alternatively, the splice control sequence is 3' to the start codon but within 1000
exonic bp, preferably 500 exonic bp, preferably 300 exonic bp, preferably 200 exonic
bp, preferably 150 exonic bp, preferably 100 exonic bp, more preferably 75 exonic
bp, more preferably 50 exonic bp, more preferably 30 exonic bp, more preferably 20
exonic bp, and most preferably 10 or even 5, 4, 3, 2, or 1 exonic bp.
[0147] The present invention is an improvement on the system defined as LA1188 in
WO2005/012534. This plasmid had a number of defects, principal of which is that exonic nucleotides
were excised with the
Cctra intron used therein, thereby resulting in an induced frameshift in the transcript.
Specifically, in addition to the sequence derived from
Cctra (the
Cctra intron), 4 nucleotides of tTAV sequence were removed in the female-specific transcript.
Therefore, though several alternatively spliced transcripts were produced, including
one female-specific transcript, none were capable of encoding functional tTAV protein.
Therefore, this construct was not capable of providing sex-specific expression of
functional tTAV protein.
[0148] Since splicing was not directed to the splice donor sequence (5'-GT...) normally
used in the Cctra intron, clearly this construct did not contain all of the regulatory
sequences necessary to direct splicing in the form of the Cctra intron in "its native
context." However, this highlights another issue. Probably the only thing missing
was the flanking TG...GT, of which it is possible that only the 5'G mattered.
[0149] A key benefit of the present invention is, in particular in relation to
tra, that the requirements for exonic sequence are so minimal (e.g. 2 nucleotides at each
end) that they can easily be designed into most coding sequences, using the redundancy
in the genetic code. So the "extra" exonic nucleotides can both be part of the heterologous
protein sequence, and the flanking sequence of the intron in its native context at
the same time.
[0150] Furthermore, the
Cctra intron in LA1188 was +132bp 3' to the G of the ATG start codon (to the last exonic
nucleotide). Indeed, although the
Cctra intron in LA1188 is the first intron read in the 5' to 3; direction from the ATG
start codon, it is not the "first" intron when read in the 5' to 3' direction from
promoter. In fact, it is the 2
nd intron, as there is a further intron (derived from the
Drosophila melanogaster Adh gene) upstream of the ATG start codon. This information is included in the Table
3.
[0151] It will be understood that where reference is made to ATG start codons or flanking
G, or 5'-TG...GT-3' sequences, that this is in relation to a DNA sequence, but this
is also covers the corresponding DNA antisense sequence and, equally, the corresponding
RNA sequence.
Description of the Sequences of the present invention
[0152]
SEQ ID NO. 1 tra consensus sequence
SEQ ID NO. 2 LA3097 5' flanking sequence
SEQ ID NO. 3 LA3097 3' flanking sequence
SEQ ID NO. 4 primer 688 - ie1-transcr
SEQ ID NO. 5 primer 790 - Aedsx-m-r2
SEQ ID NO. 6 primer 761 - Aedsx-fem-r
SEQ ID NO. 7 primer AedsxR1
SEQ ID NO. 8 Pane et al consensus sequence
SEQ ID NO. 9 Scali et al 2005 consensus sequence
SEQ ID NOS. 10 - 33 and 107 - 138 consensus sequences of putative Tra/Tra2 binding
sites deduced for Drosophila (see Table 2).
SEQ ID NO. 34: Open reading frame of tTAV
SEQ ID NO. 35: Protein sequence of tTAV
SEQ ID NO. 36: Open reading frame of tTAV2
SEQ ID NO. 37: Protein sequence of tTAV2
SEQ ID NO. 38: Open reading frame of tTAV3
SEQ ID NO. 39: Protein sequence of tTAV3
SEQ ID NO. 40: Pink Bollworm dsx female specific sequence fragment 1
SEQ ID NO. 41: Pink Bollworm (PBW, Pectinophora gossypiella) dsx female specific sequence fragment 2
SEQ ID NO. 42: Pink Bollworm (PBW, Pectinophora gossypiella) dsx male specific sequence
SEQ ID NO. 43: Partial gene sequence of Aedes aegypti dsx. All exonic sequence is included, but only partial intronic sequence- see Figures
47 and 48 for annotation.
SEQ ID NO. 44: Codling moth (Cydia pomonella) dsx female gene sequence: includes a stretch of unknown nucleotides, preferably than
then 100, preferably less than 50, more preferably less than 20, more preferably less
than 10, and most preferably less than 5.
SEQ ID NO. 45: Codling moth (Cydia pomonella) dsx-male sequence.
SEQ ID NO. 46: Sequence of pLA3435-Bombyx mori-dsx construct/plasmid.
SEQ ID NO. 47: Sequence of pLA3359-Anopheles gambiae dsx construct.
SEQ ID NO. 48: Sequence of pLA3433-Agdsx (Anopheles gambiae)construct with exon 2 included.
SEQ ID NO. 49: Sequence of pLA1188-cctra intron construct
SEQ ID NO. 50: Sequence of pLA3077-a Cctra intron-tTAV construct.
SEQ ID NO. 51: Sequence of pLA3097-a Cctra intron-tTAV construct.
SEQ ID NO. 52: Sequence of pLA3233-Cctra-intron-tTAV2 construct.
SEQ ID NO 53: Sequence of pLA3014-Cctra-intron-Ubiquitin-reaperKR construct.
SEQ ID NO. 54: Sequence of pLA3166-Cctra intron-Ubiquitin-reaperKR construct.
SEQ ID NO. 55: Sequence of pLA3376-Bztra intron-reaperKR and Bztra-intron-tTAV3.
SEQ ID NO. 56: Sequence of pLA3242-Crtra intron-reaperKR construct.
SEQ ID NO. 57: Partial sequence of a male transcript generated in Drosophila melanogaster from LA3077 transformants that differs to the sequence generated in Medfly LA3077
lines. This sequence corresponds to the M3 transcript depicted in Figure 36.
SEQ ID NO. 58: Partial sequence of Bactrocera zonata tra homologue. Sequence of intron predicted to be spliced out in a female-specific
transcript of B. zonata tra (+3 to +970bp in sequence). Exonic flanking nucleotides are at positions 1-2
and 971-972, i.e. at the 5' and 3' ends of the intronic sequence. In fact, it is worth
noting that the intronic sequence is flanked on its 5' end by a Guanine nucleotide,
which is thought critical for a clean exit of the intron.
SEQ ID NO 59: Partial sequence of Ceratitis rosa tra homologue. Sequence of intron predicted to be spliced out in a female-specific transcript
of C. rosa tra (+3 to 1311bp in sequence). Exonic flanking nucleotides are present at positions
1-2 and 1312-3. Again, it is noteworthy that the intronic sequence is flanked on its
5' end by a Guanine nucleotide, which is thought critical for a clean exit of the
intron.
SEQ ID NOS. 60-70: Primers as referred to in Figures 44-46 and 50-51.
SEQ ID NO. 71: Pink Bollworm (PBW, Pectinophora gossypiella) dsx female specific fragment 3.
SEQ ID NO. 72: Open reading frame of Drosophila melanogaster ubiquitin.
SEQ ID NO. 73: Protein sequence of Drosophila melanogaster Ubiquitin.
SEQ ID NOS. 74-105 are primers as discussed above in the Examples.
SEQ ID NO. 106 is the LA1172 nucleotide sequence, including plasmid backbone.
SEQ ID NOs 107-138 are described above.
SEQ ID NO. 139 HSP primer
SEQ ID NO. 151 LA3619 whole plasmid
SEQ ID NO. 140 VP16 primer sequence
SEQ ID NO. 141 primer Agexon1F
SEQ ID NO. 152 LA3612 whole plasmid
SEQ ID NO. 142 primer TETRR1 sequence
SEQ ID NO. 143 LA3576 plasmid sequence
SEQ ID NO. 153 LA3491 plasmid sequence
SEQ ID NO. 144 LA3582 plasmid sequence
SEQ ID NO. 154 LA3515 plasmid sequence
SEQ ID NO. 145 LA3596 plasmid sequence
SEQ ID NO. 155 LA3545 plasmid sequence
SEQ ID NO. 146 PBW-dsx (Fig 6)
SEQ ID NO. 156 LA3604 plasmid sequence
SEQ ID NO. 147 bombyx-dsx (Fig 6)
SEQ ID NO. 157 LA3646 plasmid sequence
SEQ ID NO. 148 codling-dsx (Fig 6)
SEQ ID NO. 158 LA3054 plasmid sequence
SEQ ID NO. 149 DSX Minigene1 from
SEQ ID NO. 159 LA3056 plasmid sequence construct LA3491
SEQ ID NO. 160 LA3488 plasmid sequence
SEQ ID NO. 150 DSX Minigene2 from
SEQ ID NO. 161 LA3641plasmid sequence construct LA3534
SEQ ID NO. 162 LA3570 plasmid sequence
[0153] The invention will now be described by reference to the following, non-limiting Examples.
EXAMPLES
Transformer
Example 1-Ceratitis capitata tra intron
[0154] We have prepared an insertion of a Cctra intron cassette into a synthetic open reading
frame (ORF). Two versions of this splice correctly in Medfly, in other words the splicing
of the Cctra intron cassette faithfully recapitulates what it would normally do in
the context of the endogenous Cctra gene. This is to produce 3 (major or only) splice
variants in females, one of which is female-specific (called F1), while the other
two are found in both males and females (called M1 and M2). Since each of the non-sex-specific
transcripts contain additional exonic material with stop codons, we have also arranged
this so that only the female splice variant produces functional protein.
[0155] Each of these constructs (LA3077 and LA3097) has the Cctra intron flanked by TG and
GT (to give 5'...
TG¦
intron¦GT...3'. An older construct, which does not work perfectly, is LA1188. LA1188 is
quite well characterized - splicing is exactly as above except that an additional
4 nucleotides are removed. The intron is in the context 5'...TGGCAC|
intron|GT...3'; splicing removes an additional 4 bases, i.e. 5'...TG|GCAC
intron|GT...3' (Figure 33).
[0156] In all cases the intron is invariant, and is simply the complete Cctra intron sequence.
As is normal for introns, it begins GT and ends AG. Almost all introns start with
GT, so the use of the rare alternative GC in LA1188 is surprising [GC-AG introns are
a known alternative - in one large-scale survey, 0.5% of all introns were reported
to use GC-AG (Burset et al., 2001), though this may be an underestimate, particularly
for alternatively spliced introns, of which perhaps 5% might use GC-AG (Thanaraj and
Clark, 2001)].
[0157] RT-PCR analysis was performed on LA3077, (a positive feedback construct with the
CcTRA intron in the tTAV open reading frame). Transformed adult flies of both sexes
were reared on diet substantially free of tetracycline ("off tetracycline") for 7
days. Flies were then collected for RNA extraction and RT PCR using primers (HSP-
SEQ ID NO. 104 and VP16 SEQ ID NO. 105) were used to analyse the splicing pattern
of the CcTRA intron (Figure 34). In two female samples we found the correct splice
pattern of the Cctra (776bp, corresponding to precise removal of the Cctra intron)
and saw no such band in males.
[0158] We found that LA3077 and LA3097 correspondingly gave repressible
female-specific lethality. LA3077 was tested phenotypically through crossing flies heterozygous for
LA3077 to wild type, on and off tetracycline. Female lethality ranged from 50 to 70%.
LA3097 (a modified version of LA3077 whereby the Cctra intron immediately follows
the start codon in the tTAV ORF), demonstrated a much higher level of female specific
lethality, peaking at 100% (Figure 35). The Cctra intron was also inserted in tTAV2
at the same position as LA3097, in construct LA3233, and this gave a similar phenotypic
result as LA3097 (Figure 35).
[0159] We have also prepared transformants of LA3077 in
Drosophila. Phenotypically, the construct works perfectly, which is to say it is a highly effective
female-specific lethal. However, sequencing of the splice variants of one of these
insertions has shown that the splicing of this construct in
Drosophila is not quite the same as it is in Medfly (SEQ ID NO. 57). The critical transcript,
the female-specific one, is the same in both, but at least one of the non-sex-specific
transcripts is different. It still incorporates extra exonic sequence, with stop codons,
but the splice junctions are not quite the same (Figure 36). This observation is extremely
important in that it shows that this method (regulation of gene expression by use
of alternatively spliced introns) can be used across quite a wide phylogenetic range.
[0160] A simple test to determine whether an as yet uncharacterized exonic splice regulator
(such as enhancers and suppressors) may be modifying the function of the alternatively
spliced intron, could include making the construct and introducing it into a target
tissue, then examining its splice pattern. In many cases this will not require germline
transformation, so the test can be quite rapid, for instance by transient expression
in suitable tissue culture cells or
in vivo. For instance,
in vivo testing in insects could be achieved by delivering the DNA by microinjection. However,
as the skilled person will appreciate, microinjection coupled with electroporation,
or electroporation, chemical transformation, ballistic methods, for instance,have
all been used in a number of various contexts and such methods of plasmid introduction
and protein expression therefrom are will known in the art.
[0161] We have also recently made, and have obtained transgenics with, the Cctra intron
in a different gene (LA3014) (all the above examples are in tTAV). LA3014 contains
a ubiquitin-reaper
KR fusion downstream of a Cctra intron. Phenotypic data (Figure 35) shows that LA3014
transgenic Medfly gave repressible
female-specific lethality. RT-PCR analysis on RNA extracted from adult males and females raised off
tetracycline, using primers (HSP, SEQ ID NO 74) and ReaperKR (SEQ ID NO. 75), demonstrate
that correct splicing was occurring in females (508bp band) and no such band was found
in males (Figure 37). LA3166 is another construct with the Cctra intron placed inside
the ubiquitin coding region fused to reaper
KR, but placed in a different position in ubiquitin. LA3166 also produces a dominant
repressible female-specific lethal effect in Medfly (Figure 35).
[0162] We have also recently made, and have obtained transgenics with, 'intron-only' Cctra-based
constructs with the intron in a different gene (all the above examples are in tTAV
or one of its variants, i.e. tTAV2 or tTAV3). These constructs work as predicted.
This is an important result, thus showing that there are not essential exonic sequences
in Cctra that we have simply duplicated (in function, if not necessarily in sequence)
by chance, in tTAV. We also have ubi-rpr
KR constructs of this type (LA3014 and LA3166), which also validates the ubiquitin fusion
method described above.
[0163] In order to demonstrate the phylogenetic range of the Cctra intron we generated transgenic
LA3097 and LA3233
Anastrepha ludens. LA3097 and LA3233 were selected for injection into
Anastrepha ludens as they demonstrated the best female specific lethality in
Ceratitis capitata (see Example 13). Phenotypic data was generated for 4 independent LA3097 lines and
1 LA3233 line (see Figure 38). Female specific lethality was generally somewhat lower
in
Anastrepha ludens when compared to
C. capitata but reached 100% in one line.
[0164] Anastrepha ludens transformed with LA3097 and raised on tetracycline until eclosion were isolated and
maintained off tetracycline for 7 days. RNA was then extracted and RT-PCR analysis
was performed using primers HSP (SEQ ID NO. 76) and TETRR1 (SEQ ID NO. 77). The correct
female specific (F1-like) splice pattern was observed RNA isolated from in females
(348bp) but not from males demonstrating the function of the Cctra intron in a different
species (Figure 39)
[0165] The brightest male band and the female specific band were purified and precipitated
for sequencing. The female specific transcript was found to be correctly spliced in
Mexfly females as expected for LA3097:
LA3097: AGCCACCATG|GT...intron...AG|GTCAGCCGCC
[0166] The two flanking sequences above are SEQ ID NOS. 2 and 3, respectively.
Example 2: Bactocera zonata tra intron
[0167] We isolated the tra intron from
Bactocera zonata (B. zonata) (SEQ ID NO. 58) using primers ROSA1 (SEQ ID NO. 78), ROSA2 (SEQ ID NO. 79), and
ROSA3 (SEQ ID NO. 80).
[0168] These primer sequences were designed based on conserved coding sequence of
Ceratitis capitata and
Bactrocera oleae tra homologs. Using ROSA2 and ROSA3 or ROSA1 and ROSA3 as primers, the tra intron
and its flanking coding region were amplified from
Bactrocera zonata genomic DNA. Then we used these PCR products as a template and amplified the tra
intron fragment to make the construct-LA3376 (Figure 31 and SEQ ID NO. 55). The primers
(BZNHE-SEQ ID NO. 81 and BZR-SEQ ID NO. 82) were used for making the constructs; these
primers contain additional sequences for cloning purposes. The Bztra intron in LA3376
is cloned into the ORF of tTAV3 and also of reaper
KR. Medfly transformants were generated and RNA extracted from male and female flies.
[0169] RT-PCR was then performed on both the reaper
KR (HB- SEQ ID NO. 83) and Reaper KR- SEQ ID NO. 84) and tTAV3 (SRY- SEQ ID NO. 85)
and AV3F- SEQ ID NO. 86) splice. The expected fragments of 200bp for reaper
KR and 670bp for tTAV3, corresponding to splicing in a pattern equivalent to the F 1
transcript of
Cctra (Pane
et al., 2002), were generated in females (Figure 40).
Example 3: Isolation and splicing of the Ceratitis rosa (C. rosa, Natal fruit fly) tra intron
[0170] Primers ROSA2 (SEQ ID NO. 87) and ROSA3 (SEQ ID NO. 88) were designed based on conserved
coding sequence of
Ceratitis capitata and
Bactrocera oleae. Using ROSA2 and ROSA3 as primers, the tra intron and its flanking coding region were
amplified from
Ceratitis rosa genomic DNA (SEQ ID NO. 59). We then used the PCR products as a template and amplified
the tra intron fragment to make constructs. The primers (CRNHE- SEQ ID NO 89 and CRR
SEQ ID NO 90) were used during the construction of LA3242 (SEQ ID NO. 56 and Figure
32. LA3242 contains the
C. rosa intron at the 5' end of the reaper
KR ORF.
Ceratitis capitata embryos were injected with DNA of LA3242, injected embryos were raised to adulthood
on a diet substantially free of tetracycline. RNA was extracted from adult males and
females; this was used as a template for RT PCR using primers HB (SEQ ID NO. 91) and
ReaperKR (SEQ ID NO. 92). The expected female-specific splice band (200bp), corresponding
to splicing in the equivalent pattern to that of transcript F1 of
Cctra, was observed in females and not males (Figure 41).
Double-sex
Example 4 Bombyx mori dsx in PBW
[0171] The sequence of a
Bombyx mori (silk moth) homolog of
Drosophila Dsx (
Bmdsx) has been previously described and a male- and a female-specific splice product have
been identified (Suzuki et al, 2001). Both males and females use the same 3' polyA,
and there are two female specific exons. One paper has suggested that the sex-specific
splicing is not dependent on tra/tra2, in other words even though the pattern looks
the same, the underlying mechanism may be different (Suzuki et al., 2001), though
their data, principally the lack of recognisable tra-tra2 binding sites, however,
is not compelling. In addition, a
B. mori dsx mini-gene construct (containing exonic sequence and truncated intronic sequence)
has been transformed into
B. mori and the germline transformants show sex-specific splicing (Funaguma et al., 2005).
[0172] We have generated a Bmdsx minigene based on the sequence used in the Funaguma et
al paper, with some significant changes, and injected this into the moth Pink Bollworm
to ascertain if one can obtain sex-specific splicing in a divergent species. The mini-gene
construct we generated does not included exon 1, which is present in both males and
females. In addition, we removed the intron between exon 3 and 4 (the two female specific
exons), included a heterologous sequence (containing multiple cloning sites, MCS),
used the Hr5-IE1 enhancer/promoter sequence from the baculovirus
AcNPV and used a 3' transcriptional termination sequence derived from SV40 (see Figure
42 for a schematic). The individual exon/flanking intron fragments used were amplified
and recombined together by PCR and ligated into a construct carrying a Hr5/IE1 enhancer
promoter fragment and SV40 3'UTR (Figure 22 and SEQ ID NO. 22).
[0173] LA3435 was injected into pink bollworm (
Pectinophora gossypiella) embryos. First instar larvae were collected after 5-7 days and analysed individually
by RT-PCR (using primers IE1 transcr- SEQ ID NO. 93 and SV40-RT-P2- SEQ ID NO. 94)
to determine if BMdsx can undergo male and female specific splicing (Figure 43). Our
analysis detected the male specific band (predicted to be 442bp) in 4 samples (Lanes
1, 2, 3 and 4) and the female specific band (predicted to be 612bp) in 1 sample (Lane
5).
[0174] The correct splicing of
B. mori dsx in PBW demonstrates that we can achieve (have achieved) sex-specific expression
of a heterologous sequence (here, the MCS) in a Lepidopteran by utilizing an alternative
splicing system. Furthermore, since this splicing system was derived from a heterologous
species, this suggests that such constructs might work over a wide phylogenetic range.
However, the identification of alternative splicing systems in the species of interest
is also envisioned, and methods for identifying such alternative splicing systems
are provided herein or will be known to the person skilled in the art. By providing
a MCS in our Example (see Figure 42), the expression of a sequence of interest, for
example a coding region for a protein of interest could readily be achieved by inserting
said sequence. If said sequence encoded a suitable protein, a sex-specific phenotype,
for example conditional sex-specific lethality, could thereby be introduced, for example
into pink bollworm.
Example 5: Isolation of Codling moth dsx
[0175] The dsx gene from Codling moth (
Cydia pomonella) was isolated by performing 3' RACE using primers which were based on sequence alignments
from
B. oleae, B. tyroni, C. capitata, D. melanogaster, B. mori, and
A. gambiae. RNA was isolated from a male and female codling moth and 3' RACE , to generate cDNA,
was performed using the TT7T25 primer (SEQ ID NO. 95).
[0176] PCR was performed using the primers ds1c (SEQ ID NO. 96) and TT7 (SEQ ID NO. 97).
Two rounds of nested PCR were then performed on the product of the first PCR using
the primers codling2a (SEQ ID NO. 98) and TT7 (SEQ ID NO. 99) and the product of the
second round of PCR using Codling2b (SEQ ID NO. 100) and TT7. The isolated male and
female specific sequences share sequence similarity to previously isolated dsx homologues
(Male-SEQ ID NO. 43 and Female- SEQ ID NO. 42).
Example 6: Isolation of PBW dsx
[0177] The dsx gene from pink bollworm was isolated by performing 3' RACE using primers
which were based on sequence alignments from
B. oleae, B. tyroni, C. capitata, D. melanogaster, B. mori, and
A. gambiae. RNA was isolated from a male and female codling moth and 3' RACE , to generate cDNA,
was performed using TT7T25 (sequence defined herein). PCR was performed using the
primers Pbwdsx2 (SEQ ID NO. 101) and TT7 (SEQ ID NO. 102). Nested PCR was then performed
on the product of the first PCR using the primers Pbwdsx3 (SEQ ID NO. 103) and TT7.
Three female specific sequences were isolated: PBWdsx-F1 (SEQ ID NO. 40), PBWdsx-F2
(Figure 10), and PBWdsx-F3 (SEQ ID NO. 71) and one male specific sequence (SEQ ID
NO. 42). The isolated male and female specific sequences share sequence similarity
to previously isolated dsx homologues.
Example 7: dsx in Anopheles gambiae
[0178] The sequence of the
dsx gene of
Anopheles gambiae has previously been described (Scali
et al 2005). However, when we have tried to repeat the work described in the paper we find
that there are some differences in the splicing that occurs. When we tried to repeat
the amplification of the female specific transcript using primers designed from the
mRNA sequence (Accession; AY903308 for female coding sequence and AY903307 for male
coding sequence), the amplification failed. However, when Scali and colleagues showed
that there was a shared exon, which had previously not been described, we designed
primers to amplify the entire
dsx transcript and gene. Using these primers and primers designed from genomic DNA sequence
(Accession; GI: 19611767) we find that the splicing of the female transcript is different
from that described by Scali
et al 2005 (Figure 44). The transcript showed that the female exon was in a different position.
There are several explanations for these differences, but the most likely are either
some sort of strain difference in the
Anopheles that we used to get the data from, or the published sequence is not from
Anopheles gambiae, or there is more than one female isoform as shown for
Stegomyia aegypti in Example 20.
[0179] We have also successfully used primers, designed around our version of the
Anopheles gambiae dsx splicing, that are able to distinguish between males and females of
Anopheles gambiae (Figure 45). This provides good evidence that the system will be functional as a
sex-specific splicing mechanism when fused to a protein of interest, such as tTAV
or a killer.
[0180] The
Anopheles gambiae dsx gene that we have isolated from genomic DNA, which has several changes in nucleotide
sequence compared to the reported genomic sequence, was cloned into LA3359 (SEQ ID
NO. 47) and LA3433 (SEQ ID NO. 48), schematics can be found in Figures 23 and Figure
24, respectively.
Example 8: dsx in Stegomyia aegypti
[0181] The splicing of the gene appears to be similar to
Anopheles gambiae dsx (Scali
et al 2005). The
Stegomyia aegypti dsx gene is illustrated diagrammatically in Figure 47 or 48. A male-specific transcript
(M1) is produced which does not include exons 5a or 5b. Two female specific splice
variants (F1 and F2) have the following structure; F1 comprises exons 1-4, 5a, 6 and
7 but not 5b, F2 comprises exons 1-4 and 5b (figure 46). In addition, a further transcript
(C1) is present in both males and females; this comprises exons 1-4 and 7, but not
exons 5a, 5b or 6.
[0182] The splicing of the gene appears to be similar to
Anopheles gambiae dsx (Scali
et al 2005). The
Stegomyia aegypti dsx gene is illustrated diagrammatically in Figure 47 or 48.
Actin 4
Example 9: Stegomyia aegypti Actin-4 gene
[0183] One way to get sex-, tissue- and stage-specific expression of a gene of interest
is to link it with the
Stegomyia aegypti Actin-4 (
AeAct-4) gene. This gene is only expressed in the developing flight muscles of female
Stegomyia aegypti (Munoz et al 2004). They used in-situ hybridisation to an RNA to detect the expression
profile of
AeAct-4. We have taken a fragment of the
Stegomyia aegypti Actin-4 gene, comprising a putative promoter region, an alternatively spliced intron, and
a section of 5' untranslated region (UTR) and placed it in front of sequence coding
for tTAV (Figure 49) to test the function of the sex specific splicing when fused
to tTAV.
[0184] We integrated LA1172 into the
Stegomyia aegypti genome using
piggyBac. Two independent lines were generated (lines 2 and 8). Both of these lines show the
correct splicing of the Actin-4-tTAV gene (Figures 50 and 51). The Actin-4 promoter
and alternatively spliced intron can therefore be used successfully to provide sex-,
tissue- and stage-specific splicing of a gene of interest in
Stegomyia aegypti.
Description Of The Figures And Sequence Listings of Examples 1-9
[0185]
Figure 19: One use of the P element in generating germline-specific expression of a gene of
interest (Gene E).
Insertion of the P element IVS3 and flanking exonic sequences upstream of an ubiquitin-Gene
E fusion with allow germline-specific expression of Gene E under a germline active
promoter. A - Germline active promoter; B - P-element open reading frame; C - P intron
'IVS3'; D - Ubiquitin; E - Coding region for protein of Interest e.g. tTAV.
Figure 20: Sex-specific expression using dsx.
- A: Intron used as Cctra intron above, but giving male-specific expression. A fragment of dsx (here the Anopheles version) is inserted into a heterologous coding region (shaded boxes). The intron
is completely removed in males, but in females the coding region is prematurely terminated.
- B: An alternative approach to male-specific expression, in which a heterologous coding
region is fused to a fragment of dsx.
- C: Female-specific expression: the heterologous coding region is inserted into the
female-specific exon, either as an in-frame fusion to a fragment of Dsx, or with its
own start and stop codons.
- D: Differential expression: designs B and C can be combined to give expression of
gene a in females and b in males.
Figure 21: Sex-specific alternative splicing of Cctra
- A: Cctra is spliced in females to produce three transcripts: F1, which encodes functional
Tra protein, and M1 and M2, which do not, because they include additional exons with
stop codons (redrawn from Pane et al. 2002). Males produce only transcripts M1 and M2 and therefore do not produce functional
Tra protein at all.
- B If this intron were to function similarly in a heterologous coding region, this would
similarly allow females, but not males, to produce functional protein X.
Figure 22: Diagrammatic representation of pLA3435 construct/plasmid (SEQ ID NO. 46).
Figure 23: Plasmid map of pLA3359
Anopheles gambiae dsx gene placed under the control of a Hr5-IE1 promoter for assessing splicing
via transient expression.
Figure 24: pLA3433-Anopheles gambiae dsx gene placed under the contronl of a Hr5-IE1 promoter,
with the addition of exon 2, for assessing splicing
via transient expression.
Figure 25: Schematic representation of pLA1188 construct.
Figure 26: Schematic diagram of pLA3077 construct.
Figure 27: Schematic diagram of pLA3097 construct.
Figure 28: Schematic diagram of pLA3233 construct.
Figure 29: Schematic diagram of pLA3014 construct.
Figure 30: Schematic diagram of pLA3166 construct.
Figure 31: Schematic diagram of pLA3376 construct.
Figure 32: Schematic diagram of pLA3242 construct.
Figure 33: Flanking sequence of Cctra
Splicing of the Cctra intron in LA3077 and LA3097 is exactly as you would see in the
native Cctra intron. Splicing in LA1188 results in the removal of 4 additional nucleotides.
In all cases the introns are flanked by 5' exonic TG and 3' GT.
Figure 34: Gel showing correct sex- specific splicing of intron(s) derived from CcTra (776bp
band in females) in Ceratitis capitata transformed with LA3077. Lane 1: Marker (SmartLadder™ from Eurogentec, bands of approx 0.8, 1.0 and 1.5kb
are indicated); Lanes 2 and 3:
Ceratitis capitata LA3077/+ males; Lanes 4 and 5:
Ceratitis capitata LA3077/+ females.
Figure 35: Phenotypic data for transformed female specific constructs in Ceratitis capitata. Column 1: Construct designation LA#, e.g. LA3077, LA3097, LA3233, etc, is indicated
by number, with independent insertion lines referred to by letter; Columns 2 and 3:
Non-tetracycline (NT) results for each transformed line given in total males (2) and
total females (3). Columns 4 and 5: Tetracycline (TET) results for each transformed
line given in total males (4) and total females (5).
Figure 36: Transcripts of Cctra intron constructs in Drosophila and Ceratitis capitata. The top line represents the construct DNA containing tra intron flanked by desired
gene (the open box). The red box represents the male specific exons. Introns are represented
by solid lines. Arrow above the first line represents the positions of the oligonucleotides
used in the RT-PCR experiments. The bar indicates the scale of the figure.
Figure 37: Gel showing correct female specific splicing of CcTRA-derived sequence (508bp band)
in female Ceratitis capitata transformed with LA3014. Lane 1: Marker (SmartLadder™ from Eurogentec, bands of approx 0.4 and 1.0kb are indicated);
Lane 2
Ceratitis capitata LA3014/+ male; Lane 4:
Ceratitis capitata LA3014/+ female; Lanes 3 and 5: no reverse transcriptase negative controls (background
bands, probably from genomic DNA, can be seen in lanes 2 and 4).
Figure 38: Phenotypic data for transgenic Anastrepha ludens transformed with LA3097 or LA3233. Column 1: Construct LA# (LA3097 or LA3233) indicated, with independent insertion
lines referred to by letter; Columns 2 and 3: Non-tetracycline (NT) results for each
transformed line given in total males (2) and total females (3). Columns 4 and 5:
Tetracycline (TET) results for each transformed line given in total males (4) and
total females (5).
Figure 39: Gel showing correct sex-specific splicing of CcTRA splicing (348bp band in females)
in Anastrepha ludens transformed with LA3097. Lane 1: Marker (SmartLadder™ from Eurogentec, bands of approx 0.4 and 1.0kb are indicated);
Lanes 2, 3 and 4:
A. ludens LA3097/+ males; Lanes 5, 6 and 7:
A. ludens LA3097/+ females.
Figure 40: Gel showing correct sex-specific splicing of BzTRA in reaperKR (200bp band in females)
and tTAV3 (670bp band in females) regions of LA3376, in Ceratitis capitata transformed with LA3376. Lane 1: Marker (SmartLadder™ from Eurogentec, bands of approx 0.2, 0.6 and 1.0kb
are indicated); Lanes 2 and 3:
C. capitata LA3376/+ males tested for splicing in reaperKR; Lanes 4 and 5:
C. capitata LA3376/+ females tested for splicing in reaperKR; Lane 6: SmartLadder™; Lanes 7 and
8: C.
capitata LA3376/+ males tested for splicing in tTAV; Lanes 9 and 10:
C. capitata LA3376/+ females tested for splicing in tTAV; Lane 11: SmartLadder™.
Figure 41: Gel showing correct sex-specific CrTRA splicing in CrTRA-
reaperKR (200bp band in females) in Ceratitis capitata injected with LA3242. Lane 1: Marker (SmartLadder™ from Eurogentec, bands of approx 0.2, 0.6 and 1.0kb
are indicated); Lanes 2-7: C.
capitata wild type males injected with LA3242; Lane 8: SmartLadder™; Lanes 9-14:
C. capitata wild type females injected with LA3242; Lane 15: SmartLadder™.
Figure 42: Schematic representation of Bmdsx minigene constructs.
Two minigene constructs derived from the
Bombyx mori dsx gene are illustrated diagrammatically, together with the predicted alternative splicing
of these constructs (female pattern shown above the construct, male pattern below).
(A) is the
Bombyx mori dsx mini-gene construct used in Funaguma et al., 2005) (B) is pLA3435. A and B differ
from each other in several ways: (i) Exon 1 is excluded from pLA3435, (ii) the intron
between female specific exons 3 and 4 has been removed and a short heterlogous sequence
has been inserted in pLA3435 (iii) Funaguma et al., use the ie1 promoter from the
baculovirus
BmNPV and a
BmA3 3'UTR compared with pLA3435 which uses the hr5-IE1 enhancer/promoter from the baculovirus
AcNPV and a 3'SV40 3'UTR. (iv) pLA3435 uses slightly longer intron sequences when compared
with (A) (see Figure 15 for sequence). Two minigene constructs derived from the
Bombyx mori dsx gene are illustrated diagrammatically, together with the predicted alternative splicing
of these constructs (female pattern shown above the construct, male pattern below).
Figure 43: Sex-specific splicing of BMdsx mini-gene construct in PBW. Analysis of transient expression from pLA3435 using RT-PCR show the presence of a
442bp fragment (Lanes 1,2,3 and 4) in males and a 612bp fragment in females (Lane
5), showing that the BMdsx mini-gene with a heterologous fragment inserted between
exon 3 and 4 is able to splice correctly in the divergent moth, PBW. Markers are SmartLadder™
from Eurogentec; bands of approx 0.2, 0.4 and 0.6 kb are indicated
Figure 44: Sex-specific splicing of Anopheles gambiae dsx. Anopheles (A) shows the splicing that was reported by Scali
et al 2005. However, when RT-PCR was performed using our primers (spl-agdsx-e3 (SEQ ID
NO. 60) and spl-agdsx-m (SEQ ID NO. 61)) a different splicing pattern for females
was revealed, represented by Anopheles (B).
Figure 45: Identification of male and female Anopheles gambiae using dsx primers.
RNA was extracted from male and female
Anopheles gambiae and the
dsx transcripts were amplified by RT-PCR using the primers spl-agdsx-e3 (SEQ ID NO. 62)
and spl-agdsx-m (SEQ ID NO. 63); the resulting banding pattern is shown in the gel
above. The expected bands for the male and female transcripts are indicated by the
white arrows, the bands have been cloned and sequenced and are identical to the predicted
sequence of our version of the
dsx transcript (see SEQ ID NO. 47 (LA3359) and SEQ ID NO. 48 (LA3433)). The molecular
weight markers are shown in kb (SmartLadder™ from Eurogentec; sizes are approximate).
Figure 46; Identification of male and female Stegomyia aegypti using dsx primers.
The primers for the Stegomyia aegypti RT-PCR for A and B were aedesxF1 (SEQ ID NO.
64) and aedesxR5 (SEQ ID NO. 65) were tested initially on pupae, a life stage of
Stegomyia aegypti that can be sexed conveniently and accurately; the resulting RT-PCR amplification
is shown on gel image (A). The male and female pupae show a distinctive sex specific
band. Then the primers were tested on RNA extractions from larvae, which can not be
readily sexed by their morphology and the resulting RT-PCR amplification shown on
gel image (B). The larvae show a clear banding pattern which distinguishes males from
females unambiguously. Gel image (C) shows an approximately 600bp band from RT-PCR
using the primers aedessxF1 and aedesxR2 (SEQ ID NO. 66) from individual male and
female pupa. Sequencing of this band showed a female specific splice variant which
does not appear to possess the male shared exon to which aedesxR5 is predicted to
anneal (exon 7, see figure 56). The molecular weight markers are shown in kb (SmartLadder™
from Eurogentec; sizes are approximate).
Figure 47: Diagrammatic representation of part of the Stegomyia aegypti dsx gene (not to scale).
A fragment of the
Stegomyia aegypti dsx gene is represented above. Exons 5a and 5b are female specific and exon 6 is a male
specific exon. Two female-specific splice variants have been found (F1 and F2) which
comprise exons 1-4,5b,6 and 7 (F1) or 1-4,5a (F2); transcripts in males (M1) comprise
exons 1-4,6 and 7 but not exon 5a or 5b and a transcript (C1) of 1-4 and 7 but not
exons 5a, 5b or 6 is shown in males and females. The numbers for each of the exons
after # relates to contig 1.370 (
http://www.broad.mit.edu/annotation/disease vector/aedes aegypti/), which reads in the opposite orientation, and after * relate to the nucleotide sequence
shown in SEQ ID NO. 43.
Figure 48: Diagrammatic representation of the Stegomyia aegypti dsx gene.
The entire
Stegomyia aegypti dsx gene is represented above Exon 5 is the female specific exon and exon 6 is a putative
male specific exon. In principle, transcripts in females comprise exons 1,2,3,4,5
and 7, and males comprise exons 1,2,3,4,6 and 7. The numbers for each of the exons
after # relates to contig 1.370
(
http://www.broad.mit.edu/annotation/disease vector/aedes aegypti/) reading in the opposite orientation, and after * relate to figure 12.
Figure 49: Plasmid map of pLA 1172.
A coding region for tTAV has been placed under the control of a fragment from the
Stegomyia aegypti actin-4 gene (Munoz
et al 2005) which includes the 5' UTR, first intron, and upstream sequences (putative promoter).
The construct also contains a tetO
7 Nipper sequence. The construct has
piggyBac ends and a DsRed2 marker for stable integration into a genome.
Figure 50: Sex-specific splicing of tTAV in LA1172 transformants.
Gel image of RT-PCR of RNA extracted from LA1172 line 2 male and female pupa. The
primers used were Agexon1 (SEQ ID NO. 67) and Tra (tTAV) seq+ (SEQ ID NO. 68). Sequencing
of the RT-PCR bands showed the expected splicing occurring in males and females. The
data shown in the above diagram is for LA1172 line 2, line 8 showed exactly the same
results (data not shown). Markers are SmartLadder™ from Eurogentec; approximate sizes
are indicated, in kb).
Figure 51: RT-PCR of wild type samples, showing sex-specific splice variants of the Stegomyia aegypti Actin-4 gene.
Gel image of RT-PCR of RNA extracted from different developmental stages, and dissections
of adults, of LA1172 line 8. The primers used were Agexon1 (SEQ ID NO. 69) and Exon
3 (SEQ ID NO. 70). The gel image shows that strong expression from the Actin-4 gene
only occurs at the pupal stage, and that adult expression is generally limited to
the female thorax where the flight muscles are found. Table 17, below show the contents
of each lane.
Table 1.
| E = pool of ∼100 embryos |
MH = head from male adult |
| L4 = 4th instar larva |
MT = thorax from male adult |
| ME = early male pupa (<4hours old) |
MA = abdomen from male adult |
| FE = early female pupa (<4hours old) |
FH = head from female adult |
| MP = male pupa |
FT = thorax from female adult |
| FP = female pupae |
FA = abdomen from female adult |
| |
-ve = water control |
Further Examples
Example 10: Moths.
[0186] We have newly made constructs based on our transient expression data using a recombinant
minigene construct derived from Bombyx mori. This is discussed further below in the
section entitled "Moth
dsx sequence alignment and conserved motifs"
Example 11: Use of Bztra
[0187] We have newly made two
Bztra-based constructs, expressed in Mexfly (LA3376). LA3376 gives repressible female-specific
lethality. LA3376 we have previously shown to function and splice correctly in Medfly.
Transformants in Mexfly (
Anastrepha ludens) were also generated with LA3376. These were analysed for correct splicing of the
Bztra intron in order to demonstrate the phylogenetic range of the Bztra intron by
RT-PCR using primers SRY and AV3F (Figure 15 and "Medfly RT-PCR gels" section above).
This shows correct splicing of the Bztra intron in Mexfly.
Example 12: Dmdsx in Medfly (DmDsx in transgenic Medfly example: nipper fusion in
#797)
[0188] We also have newly made data on a Dmdsx construct in Medfly. The construct used a
fragment of the
Drosophila melanogaster gene
doublesex to give sex-specific expression of a fragment of the
Drosophila melanogaster gene
Nipp1Dm (we call this fragment "nipper"). We didn't see clear sex-specific splicing. However,
the phenotypic data shows some sex-specificity; we saw increased lethality of females,
to about 75% penetration. Of course this incomplete penetrance could be due to expression
level, lack of toxicity of nipper in Medfly, etc. We also had a significant reduction
in the number of males, but the tTA source, LA670, used in this experiment could itself
be killing some of the males.
[0189] We have tested three independent Medfly transgenic lines that carry a fusion of nipper
to DmDsx sequence that was intended to be expressed specifically in females. This
construct may not have worked perfectly possibly due to essential sequence for correct
alternative splicing and/or the Sxl binding sites required by DmDsx, and since Medfly
do not use Sxl in the sex-determining pathway, DmDsx may be unable to completely splice
this fusion in the correct way in Medfly. However, we were successful in reproducibly
causing increased lethality in females compared to males across all three lines at
a very similar efficiency (approximately 75% more lethality observed in females than
in males). This demonstrates the dsx system can work across quite distantly related
species (evolutionary separation is around 120-150 Million years), and if the Ccdsx
sequence were used it may have well worked due to the Sxl requirement of Dmdsx .
[0190] The 797 results are shown below, using a Tet014 dsx splice nipper (Pub EGFP) system.
They show that this system is lethal at the larval stage (∼50%), and is likely to
be acting more successfully in females (∼75%). 797 is marked with green (G), 670 with
red (R). 670 is a tTAV source, so one expects to see a phenotype in the R+G flies;
G (and R) only are controls. NF - non-fluorescent (i.e. wild type) is also a control
where included. All progeny reared on tet-free media.
[0191] All three Independent Lines seem to act in similar way.
| 797A/797A M2 x 670A/+: |
| |
Pupae |
Adults |
Males: Females |
| G |
184 |
176 |
85: 91 |
| R+G |
74 |
57 |
44: 13 |
| |
|
|
|
| 797C/797C M1 x 670A/+: |
| |
Pupae |
Adults |
Males: Females |
| G |
169 |
157 |
89: 68 |
| R+G |
94 |
67 |
54: 13 |
| |
|
|
|
| 797C/797C M2 x 670A/+: |
| |
Pupae |
Adults |
Males: Females |
| G |
406 |
377 |
179: 198 |
| R+G |
171 |
147 |
121: 26 |
| |
|
|
|
| 670A/+ x 797C/+ M2: |
| |
Pupae |
Adults |
Males: Females |
| NF |
198 |
192 |
92: 100 |
| G |
162 |
147 |
67: 80 |
| R |
149 |
72 |
43: 29 |
| R+G |
45 |
22 |
20: 2 |
[0192] Average of all 3 lines: number of R+G females = 21 % of the number of R+G males,
therefore substantial excess mortality in R+G females relative to males. This effect
is not seen in R only or G only control females, nor in wild type.
Examples 13-15:
[0193]
We have newly demonstrated:
(5) sex-specific splicing in recombinant Aadsx-based minigene constructs;
(6) sex-specific phenotype from a Cctra-based construct; and
(7) sex-specific splicing in Aedes-Actin4 -based constructs.
[0194] At least some of each of these examples not only shows minigenes, but actually shows
splicing to generate tTAV/tTAV2 or ubi-tTAV2
Example 13: Aedes doublesex (dsx) minigenes
[0195] See also section entitled
Aedes dsx Tra2 binding sites. We have isolated the
Aedes aegypti dsx gene (
Aadsx) and identified 6 transcripts from this region (Figure 1). These are: 2 male-specific
transcripts (M1 and M2), 3 female-specific transcripts (F1, F2 and F3) and a transcript
found in both males and females (MF). We made two minigene constructs. In these constructs,
the large majority of the intronic sequence was deleted. For example, DSX minigene1
is approximately 4.4kb in length, whereas its terminal sequences are separated by
approximately 26kb in its natural context, i.e. in the genomic DNA of
Aedes aegypti.
[0196] The splicing in minigene2 of Figure 1 is illustrative as splicing occurs in the "female"
form in both males and females. This may mean that this system depends on alternative
splice acceptor use. In this model, there is competition between alternative splice
acceptors, with some sex-specific factor biasing this, the sex-specific factor probably
being Tra. But deleting the M1 and M2 3' splice acceptors forces splicing in the F
forms, by removing the alternative.
[0197] Therefore, it is preferred that one or more of the female-specific (F1 and/or F2)
3' splice acceptors are provided together with an additional 3' splice acceptor. Most
preferably, said additional splice acceptor is the 3' splice acceptor of M1 or M2
splice variant (or both), although it is envisaged that this is not essential as other
known 3' splice acceptors are likely to function.
[0198] Figure 1 illustrates the various transcripts produced by alternative splicing of
the
Aedes aegypti doublesex gene (
Aadsx). It will be appreciated that
Aedes aegypti is also known as
Stegomyia aegypti. The figure shows the
Aadsx gene from the fourth exon, which is not alternatively spliced, i.e. is present in
all transcripts discussed here. Numbering is from the first nucleotide of the fourth
exon (
acgacgaact...). Note that the diagram is not to scale - the introns are much longer
than the exons. The total alternatively spliced region comprises over 43kb.
[0200] A second, smaller minigene was constructed similarly (DSX minigene2) and an expression
construct for this was inserted into the same
attP site as DSX minigene1, to allow direct comparison (LA3534). DSX minigene2 did not
show sex-specific splicing. This indicates that sequences present in DSX minigene1
but not in DSX minigene2 (approx 2029bp, see Fig 1 and SEQ ID NO. 150, where exons
are found at positions 29-163 and 1535-2572) are essential for correct alternative
splicing, even though the first alternatively spliced intron, and the exonic sequence
immediately flanking it, is present in both constructs.
[0201] We have produced two transgenic lines (LA3491 and LA3534) using minigene constructs
of
Aedes aegypti dsx gene. LA3491 is a fusion of shared exon4, the female-specific cassette exons, and
part of the first shared 3' exon (exon 5 in transcript M1).
[0202] Transcripts from the minigene region of LA3491 were analysed by reverse transcriptase
PCR (RT-PCR) and sequencing. Transcripts corresponding to alternative splicing in
the F2 form were found in females but not in males (Fig 2 and 3) and in the F1 form
there was some male expression but it was very low (Fig 4). While transcripts corresponding
to the M1 form were detected in males but not in females (Fig 2). Since the minigene
did not contain the 3' splice acceptor of the M2 variant, this transcript was not
possible from this construct. This minigene does not contain any exogenous sequence,
though it clearly demonstrates sex-specific splicing of an Aadsx fragment, indeed
a highly deleted "minigene" fragment.
[0203] It will be apparent that certain sequences are important for controlling splicing
and should therefor be retained, as discussed elsewhere. This can be easily established
by deletion of certain portions and testing for alternative splicing by RT-PCR for
instance.
[0204] Figure 2 shows RT-PCR of males and females from LA3491
Aedes aegypti transgenic line using the primers 688 - ie1-transcr (SEQ ID NO. 4) and 790 - Aedsx-m-r2
(SEQ ID NO. 5). Using these primers, splicing in the F2 pattern would give a band
of approximately 985bp while splicing in the M1 pattern would give a band of approximately
516bp. A band of approx 985bp (F2) appeared only in lanes representing females and
a band of approx 516bp male specific transcript 1 (M1) appeared only in males. These
bands have been sequenced and show that correct splicing had occurred, i.e. F2-type
and M1-type respectively. The absence of bands in the no RT controls (-RT CON) shows
that there was no genomic DNA contamination in the samples. Lanes 1 and 11 are Marker
(SmartLadder™ from Eurogentec, bands from 1.5kb to 0.2kb are indicated). Lanes 2 and
3 are negative controls (no reverse transcriptase) and lanes 2-9 represent reactions
performed on extracts from males or females as marked.
[0205] Figure 3 shows RT-PCR of males and females from LA3491 Aedes aegypti transgenic lines
using the primers 688 - ie1-transcr (SEQ ID NO. 4) and 761 - Aedsx-fem-r (SEQ ID NO.
6). Using these primers, splicing in the F2 pattern would give a band of approximately
525bp. A band of approximately 525bp was present in reactions on extracts from females,
but not from corresponding reactions on extracts from males. Sequencing of this 525bp
band confirmed that correct, i.e. F2-type splicing had occurred. Marker (SmartLadder™
from Eurogentec, bands from 1.5kb to 0.2kb are indicated).
[0206] Figure 4 shows RT-PCR of males and females from LA3491
Aedes aegypti transgenic lines using the primers 688 - ie1-transcr (SEQ ID NO. 4) and AedsxR1 (SEQ
ID NO. 4). Using these primers splicing in the F1 pattern would give a band of 283bp.
A band of approximately 283bp is present predominantly in females, although there
is evidence of a small amount of splicing in males. Sequencing confirmed that this
band did indeed correspond to splicing in the F1 pattern. Marker (SmartLadder™ from
Eurogentec, bands from 1.5kb to 0.2kb are indicated).
[0207] LA3534 is identical to LA3491 except for a 3' deletion of approx 2kb. This construct
showed no differential splicing between male and females (Fig 1, minigene 2). RT-PCR
gels have not been shown for this case. Based on these results several constructs
have been designed to incorporate the sex-specific splicing of LA3491 (Fig 1, minigene
1) into a positive-feedback system. LA3612 (Fig 5), which incorporates a fusion of
ubiquitin and tTAV2 into the
dsx coding region, is designed so that when the F2 female transcript is produced, the
ubiquitin is cleaved and the tTAV2 is released to initiate and sustain the positive
feedback system. LA3619 (Fig 5) has tTAV2 without ubiquitin and using its own translation
start codon. LA3646 (Fig 5) is identical to LA3619 except the start codons for the
dsx gene have been mutated; this should improve the quantity of tTAV2 produced by removing
non-specific translation.
[0208] Figure 5 is a diagrammatic representation of plasmids based around the splicing in
Aedes aegypti dsx minigene. For clarity it will be understood that the first female intron represents
any of F1, F2 or F3 splicing, and tTAV in the diagram refers to tTAV2 (it will be
appreciated that other proteins or other versions of tTA or tTAV could alternatively
be used). In each of these plasmids, apart from LA3491, heterologous sequence has
been added to the F2 exon. "Putative ATG" represents any ATG triplet sequence in exonic
sequence located 5' relative to the heterologous DNA. In LA3646 these putative translation
start codons ("putative ATG") were removed or modified. In the case of construct LA3612,
translation from an upstream (5') ATG that is in frame with the ubi-tTAV coding region
will still (assuming no intervening stop codon) produce functional tTAV, following
separation of the ubiquitin and tTAV moieties by protease action. The various alternative
splicing cassettes are operably linked to a suitable promoter, transcriptional terminator
and other regulatory sequences.
[0209] This example shows sex-specific splicing of a highly compressed "minigene" fragment
in a heterologous context (i.e. heterologous promoter, 5' UTR and 3'UTR). Although
it does not show differential expression of a non
-Aedes sequence, as the alternatively spliced exons are derived from the
Aadsx gene and do not contain additional material, it does clearly illustrate the feasibility
of this approach. In any case, the promoter, 5' UTR and 3'UTR are heterologous. We
have additional constructs which illustrate several different methods for obtaining
differential (sex-specific) expression of a heterologous protein by this
dsx .
TRA sequence alignment
[0210] Pane et al. (2002) suggested that certain sequences related to the known binding
sites of the Tra/Tra-2 complex in
Drosophila might be important in regulating the splicing of Cctra, and this also known for
Drosophila dsx and has also been suggested for
Anopheles gambiae dsx (Scali et al 2005). The consensus sequence is variously described as
UC(U/A)(U/A)C(A/G)AUCAACA (Pane et al), SEQ ID NO. 8, or
UC(U/A)(U/A)CAAUCAACA (Scali et al 2005), SEQ ID NO. 9.
[0211] It is noteworthy that these definitions are extremely similar. Pane
et al identify 8 partial matches to this consensus in the Cctra sequence (7 or more nucleotides
matching the 13 nucleotide consensus sequence. Scali et al identify 6 matches in
Agdsx (9/13 or better). Such sequences are also known to regulate the alternative splicing
of the
Drosophila gene
fruitless; Scali
et al review 3 matches in that sequence (12/13 or better). Correct splicing of
dsx may also require a purine-rich region, as discussed by Scali
et al.
[0212] As can be seen from the Table 2 and Figure 7, we have identified what are thought
to be significant clusters of binding sites for Tra/Tra2 in our
Aedes aegypti dsx minigene 1.
Moth dsx sequence alignment and conserved motifs
[0213] Figure 6 shows an alignment of the second female-specific exons and flanking sequences
of dsx genes from pink bollworm (
Pectinophora gossypiella, PBW-dsx, SEQ ID NO. 146), silk worm (
Bombyx mori, bombyx-dsx, SEQ ID NO. 147) and codling moth (
Cydia pomonella, codlingdsx, SEQ ID NO. 148). The second female-specific exon is shown in bold. We
identified multiple copies of a short, repeated nucleotide sequence, conserved in
sequence and approximate location between these relatively distantly related moths;
these are located just 5' to the female-specific exon. The conserved repeats AGTGAC/T
are underlined. Asterisks (*) represent identical nucleotides, dashes (-) represent
gaps for best alignment. The exons are represented in the SEQ ID NOS. by the following
nucleotide numbering: SEQ ID NO. 146 289-439; SEQ ID NO. 147 339-492; and SEQ ID NO.
148 285-439.
Aedes dsx Tra2 binding sites.
[0214] In females of
Drosophila melanogaster, Tra and a product from the constitutively active gene
tra2, act as splicing regulators by binding to splice enhancer sites on the pre-mRNA of
dsx, which activates the weak 3' acceptor site of the female-specific exon (Scali et al).
In males there is no expression of TRA and the weak 3' acceptor site is not recognised
and splicing occurs at the male exon. To look for putative Tra/Tra2 binding sites
we used the consensus sequence of these binding sites deduced for
Drosophila Tra/Tra2 and looked for the distribution of these in the
Aedes aegypti dsx gene sequence. This is shown in Table 2, below.
Table 2: * = in 3491, only 9/13 but 6/6 in core. This table does not include 9/13
identities apart from the ones that are in 3491 with 6/6 identity with core sequence
of wwcrat. This consensus core sequence (WWCRAT) is particularly preferred.
| Name |
Sequence w = T or A r = AorG |
Present in Minigene 1 |
Position |
Identity with consensus |
Identity with wwcrat |
SEQ ID NO. |
| |
|
|
|
|
|
|
| Consensus |
tcwwcratcaaca |
/ |
/ |
/13 |
/6 |
138 |
| |
|
|
|
|
|
|
| 1 |
tcaacaagcaaca |
Y |
14917 |
12 |
5 |
10 |
| 2 |
ttatcaaacaaca |
Y |
364 |
11 |
5 |
11 |
| 3 |
tcatcaattaaaa |
|
1015 |
11 |
6 |
12 |
| 4 |
tcatcaatcaaac |
|
6502 |
11 |
6 |
13 |
| 5 |
tcttcaaccaacc |
Y |
14958 |
11 |
5 |
14 |
| 6 |
cctacaatctaca |
Y |
14973 |
11 |
6 |
15 |
| 7 |
tcttagatcaaaa |
|
16553 |
11 |
5 |
16 |
| 8 |
tcttcgatcatta |
|
17386 |
11 |
6 |
17 |
| 9 |
ccaacaatctaca |
|
28802 |
11 |
6 |
18 |
| 10 |
tcaaagatcacca |
|
42096 |
11 |
5 |
19 |
| 11 |
tcttcggtcgacg |
Y |
256 |
11 |
5 |
20 |
| 12 |
tcgacaaacaaaa |
|
1277 |
11 |
<5 |
21 |
| 13 |
tattcaaacaacg |
|
4061 |
11 |
5 |
22 |
| 14 |
ttttcgataaaaa |
|
4380 |
10 |
6 |
23 |
| 15 |
tcttcagtctgca |
|
5399 |
10 |
5 |
24 |
| 16 |
gattcaatcatca |
|
7723 |
10 |
6 |
25 |
| 17 |
ttatcgagcaaaa |
|
8137 |
10 |
5 |
26 |
| 18 |
tcataactcaaga |
|
9062 |
10 |
<5 |
27 |
| 19 |
tcagaaatcaaaa |
|
9126 |
10 |
<5 |
28 |
| 20 |
tctttaatttaca |
|
10639 |
10 |
5 |
29 |
| 21 |
tttacaatcctca |
|
10646 |
10 |
6 |
30 |
| 22 |
tcatagatcagga |
|
11214 |
10 |
5 |
31 |
| 23 |
acctcaaacaaca |
|
11989 |
10 |
<5 |
32 |
| 24 |
tcatcgaacaccc |
|
12020 |
10 |
5 |
33 |
| 25 |
tcaataatcgtca |
|
12199 |
10 |
5 |
107 |
| 26 |
tcatcaaacgtca |
|
13287 |
10 |
5 |
108 |
| 27 |
ttatcgttaaaca |
Y |
13439 |
10 |
5 |
109 |
| 28 |
taaacagtcaata |
Y |
13446 |
10 |
5 |
110 |
| 29 |
tacacgatcagca |
Y |
14096 |
10 |
5 |
111 |
| 30 |
aatacaaacaaca |
Y |
14637 |
10 |
5 |
112 |
| 31 |
tcatcaacaagca |
Y |
14914 |
10 |
5 |
113 |
| 32 |
tctacaaaccaga |
Y |
14980 |
10 |
5 |
114 |
| 33 |
acatcgattcaca |
|
16085 |
10 |
6 |
115 |
| 34 |
cgctcaatcaaca |
|
16175 |
10 |
5 |
116 |
| 35 |
tctaccataaaaa |
|
16511 |
10 |
5 |
117 |
| 36 |
aaatgaatcaaca |
|
20044 |
10 |
5 |
118 |
| 37 |
acatcgttcaacg |
|
21374 |
10 |
5 |
119 |
| 38 |
tcttgattcacca |
|
21580 |
10 |
<5 |
120 |
| 39 |
tctgcagacaaca |
|
22408 |
10 |
<5 |
121 |
| 40 |
tcttcggtaatca |
|
23285 |
10 |
5 |
122 |
| 41 |
tctataaacaata |
Y |
25436 |
10 |
<5 |
123 |
| 42 |
taaacaataaata |
Y |
25440 |
10 |
6 |
124 |
| 43 |
taaacaagcaaaa |
|
28242 |
10 |
5 |
125 |
| 44 |
tcaacgatcggcg |
|
30309 |
10 |
6 |
126 |
| 45 |
tgatccatcatca |
|
30910 |
10 |
5 |
127 |
| 46 |
tcaacatgcaaga |
|
32295 |
10 |
<5 |
128 |
| 47 |
tcttaaataaaga |
|
32862 |
10 |
5 |
129 |
| 48 |
tcaaagatctata |
|
40551 |
10 |
5 |
130 |
| 49 |
taatgaattaaca |
|
40847 |
10 |
5 |
131 |
| 50 |
tttaccatcaact |
|
41712 |
10 |
5 |
132 |
| 51 |
taatgaaacaaca |
|
43380 |
10 |
<5 |
133 |
| 52* |
gtttcaattaaaa |
Y |
13500 |
9 |
6 |
134 |
| 53* |
tattcaattataa |
Y |
13602 |
9 |
6 |
135 |
| 54* |
tcttcaatcgttt |
Y |
15002 |
9 |
6 |
136 |
| 55* |
tcaacgatccttt |
Y |
15533 |
9 |
6 |
137 |
[0215] Figure 7 is a diagrammatic representation of putative Tra/Tra2 binding sites within
the
dsx coding region of plasmid LA3491. This diagram is approximately to scale and represents
a sequence of approximately 4kb. We can calculate the chance of a random match to
the Tra/Tra2 consensus sequence. Assuming all 4 nucleotides occur at equal frequency,
the chances of any given nucleotide in a random sequence being the first nucleotide
of a 10/13 or better match to the consensus is approx 7x10
-4. Therefore, one would expect slightly less than one such match per 1000 nucleotides
of such random sequence. The calculation for this is below:
Sex-specific splicing: probabilities
Questions
[0216] A binding site consensus sequence consists of 13 bases. Ten of those (fixed) positions
(call this set X) must each be one specific base. The other three (call this set Y)
can each be one of two specific bases. Assuming that each possible base A, G, C and
T is equally likely and that the base at each position is independent of the bases
at the other positions, what is the probability of a 13-base sequence selected at
random exactly matching this sequence? What are the probabilities of such a sequence
being a near mismatch (allowing for up to one, two, three or four differences)? The
answers are provided in Table 2 below and the workings are shown thereafter.
Answers
Workings
Experiment 14: Cctra
[0219] We have one line of LA3097 (LA3097A) which shows very good expression of its fluorescent
marker; it is unknown if this line is a single integration event. This line does show
evidence of sex-specific splicing, when reared off tetracycline all the females die
as embryos, and when it is on 30µg/ml of tetracycline both males and females survive.
[0220] This example is important. It shows that
Cctra provides sex-specific alternative splicing in
Aedes, and that this can be used to give sex-specific lethality. This, therefore, provides
evidence of the phylogenetic range for
Cctra splicing. Thus, it is entirely plausible that the present invention can be applied
to all Diptera, as we have shown that
Cctra works in
Drosophila, tephritids and mosquitoes, which essentially spans the whole Dipteran Order.
[0221] It is surprising that Cctra works in
Aedes, given the rapid sequence evolution of tra.
[0222] We transformed
Aedes aegypti with construct LA3097. Heterozygous males from the resultant transgenic line were
crossed to wild type and the progeny reared in aqueous medium supplemented with tetracycline
to a final concentration of 30 µg/ml. Adults were recovered as follows: 14 males and
one female, thus showing significant female-specific lethality.
[0223] This species and strain normally has a sex ratio of approximately 1:1, therefore
this construct gave female-specific lethality in
Aedes aegypti. Equivalent constructs which did not contain the
Cctra intronic sequence gave non-sex-specific lethality. Therefore, the
Cctra intron can be used to provide differential (i.e. sex-specific) regulation of gene
expression in mosquitoes, and this can further be used to provide sex-specific lethality
and a method for the selective elimination of females from a population.
[0224] In more detail: on 0 µg/ml tetracycline, males survive only to pupae, i.e. don't
make it to adult. Females die so early that we don't see them, probably as embryos,
so there is still a differential effect between the sexes. However, the pupal lethality
in males suggests that the system is not completely switched off in males. The single
insertion line that we recovered is unusual, in that it shows extremely strong expression
of the marker; other insertions with more typical expression levels might well not
show male lethality.
Splicing in LA3097A
[0225] Analysis of splicing of LA3097 from LA3097A transgenic mosquitoes by RT-PCR showed
that males and females shared two transcripts, an approximately 950 bp band and a
fainter band of approximately 800 bp (Figure 59). Sequencing of these bands showed
that the -900 bp band corresponds to a non-sex-specific splice variant (AeM2, -920
bp), and the fainter band was a mixture of a non-sex-specific splice variant (AeM1,
∼804bp) and the female form (AeF1, ∼765bp), see Figure 60. The splicing of the AeF1
transcript was identical to that shown for this construct in Medfly (Figure 33). The
splicing of the M transcripts differs somewhat from that seen in the native context
(Cctra splicing in Medfly, either the native gene or as we observed from LA3097 in
transgenic Medfly); in AeM1 the second alternatively spliced exon (ME1b) is not included
in the mature AeM1 transcript and in AeM2 the second alternatively spliced exon (ME2b)
is similarly not included in the mature AeM2 transcript. In other words, for each
of these transcripts the first but not the second cassette exon is present, relative
to the Medfly prototype. Note that, as a consequence of the absence of the second
cassette exon in AeM1, and the reading frame of tTAV2 relative to the first cassette
exon in this construct, splicing in the AeM1 pattern does not lead to interruption
of the tTAV2 open reading frame, but rather to the addition of 39 nucleotides (corresponding
to 13 amino acids) between the ATG and the rest of the tTAV2 open reading frame. It
is likely that this variant of tTAV2 may retain some activity, relative to normal
or prototypic tTAV2 (as encoded by the F1 splice variant). In the absence of tetracycline,
a phenotypic effect was observed in males as well as in females, though weaker in
males than females. Production of a partially active variant of tTAV2 from the AeM1
transcript in males (and females) may explain this.
[0226] Figure 59 - shows RT-PCR of males and females from LA3097A
Aedes aegypti transgenic line using the primers HSP (SEQ ID NO. 139) and VP16 (SEQ ID NO. 140).
Using these primers, splicing in the CcF1 pattern (i.e. corresponding to the F1 variant
of
Ceratitis capitata) would give a band of approximately 765bp and splicing in the CcM1 1005bp and CcM2
1094bp. In both males and females, a strong band of approximately 950bp (1) was observed
along with a fainter band of approximately 800bp (2). Marker (SmartLadder™ from Eurogentec,
bands from 1.5kb to 0.4kb are indicated).
[0227] Sequence analysis of several clones from band 2 (i.e. AeM1/AeF1 splice variants)
from males and females showed that one of five clones from females showed AeM2 splicing
(20%), whereas in males three of the four clones showed AeM2 splicing (75%); all the
other clones showed AeF1 splicing. This indicates that there is more AeF1 transcript
present in females than in males and this would explain the differential killing effect
seen between them.
[0228] Figure 60 Illustrates the various transcripts produced by alternative splicing of
Cctra from LA3097A
Aedes aegypti transgenic line. 3097 represents the DNA sequence of Cctra and the numbers relate
to figure described elsewhere. Shading and boxes also relate to Figure 33. Note that
the diagram is not to scale.
Example 15: Aedes Actin-4;
[0229] We have eleven lines of LA3545, which uses the
Aedes actin-4 gene (
AeAct-
4 or
AaAct4) to drive expression of tTAV2. In construct LA3545, a sequence encoding tTAV2 has
been inserted into the second exon of AaAct4 (fig 10). For transcripts spliced in
the pattern characteristic of
AaAct4 splicing in females, the ATG of the tTAV2 coding region will be the first (5'-most)
ATG of the transcript. Splicing in the pattern characteristic of
AaAct4 splicing in males introduces an array of start and stop codons before the tTAV2 sequence
which tends to inhibit or interfere with translation from the ATG of the tTAV2 coding
region. These lines should only express tTAV2 in female pupae. The splicing is shown
in Figure 8, below.
[0230] Figure 8 shows RT-PCR of male and female adults from LA3545AeC
Aedes aegypti transgenic line using the primers Agexon1F (SEQ ID NO. 141) and TETRR1 (SEQ ID NO.
142). Using these primers, splicing in a pattern equivalent to that of the native
AaAct4 gene would give bands of approx 347bp for the female-type splice variant and
of approx 595bp for the male-type splice variant. A band of approx 347bp band (F)
was found only in reactions on extracts from females; a band of approx 595bp (M) was
found in both males and females. Sequencing has confirmed that the correct splicing
occurred in males and females. Marker (SmartLadder™ from Eurogentec, bands from 1.5kb
to 0.2kb are indicated).
[0231] We also have transgenic
Aedes aegypti carrying construct LA3604, which is similar to LA3545 except it has an engineered
start codon in the portion of exon 1 that is present in both male-type and female-type
transcripts (Fig 10). This is arranged to be the first ATG in either transcript type.
LA3604 encodes tTAV2 fused to ubiquitin (LA3545 codes tTAV, while LA3604 codes ubi-tTAV2).
This construct should produce a fully functional tTAV2 protein in females only, even
if the male form is expressed in females the extra male exon contains several start
and stop codons that would prevent translation of the Ubi-tTAV2 fusion protein.
[0232] The alternative splicing of
AaAct4 occurs in the 5' UTR (of the native gene). It may or may not have a regulatory role
in the native gene. One possibility is as follows: in the female-specific splice variant,
the start codon of the
AaAct4 coding region is the first ATG of the transcript. However, in the male-specific splice
variant there are several additional ATG sequences 5' to the start codon of the
AaAct4 coding region; most of these have in-frame stop codons a short distance 3'. This
sequence arrangement may interfere with the efficient translation of the
AaAct4 protein and thereby reduce expression of the protein in males as compared with females.
This is the arrangement in LA3545.
[0233] However, a greater differential effect between males and females would be expected
if the intron was included in coding region (rather than 5' UTR), i.e. inserted between
the start and stop codons of the polynucleotide for expression in the insect. In this
case, the male-specific cassette exon would change the coding potential of the transcript,
rather than simply interfering with translation.
[0234] This is achieved in construct LA3604. We modified the shared first exon to include
an ATG sequence in a suitable sequence context for translational initiation. In this
modified sequence, this is the first ATG in either the male-type (M) or female-type
(F) splice variants. Following splicing in the F form, this (engineered) 5' ATG is
in frame with the ubi-tTAV coding region. F-type transcripts would therefore encode
a fusion protein, comprising sections encoded by (i) part of what is normally Act4
5' UTR (but here obviously translated, and so not UTR at all), (ii) ubiquitin coding
region and (iii) tTAV2 coding region.
[0235] Activity of cellular ubiquitin proteases will release the tTAV2 protein. Translation
from the engineered 5' ATG would be terminated by in-frame stop codons in the additional
sequence (cassette exon) present in transcripts spliced in the M form. This would
therefore prevent expression of functional tTAV2 in males, thereby giving sex-specific
expression of tTAV2. Obviously, this gives a general method for sex-specific expression
of a protein, by replacing the tTAV2 segment with another protein or sequence of interest.
Using this strategy we have provided transgenics and shown sex-specific splicing (Fig
9).
[0236] Figure 9 shows RT-PCR of males and females from LA3604AeA
Aedes aegypti transgenic line using the primers Agexon1F (SEQ ID NO. 141)and TETRR1 (SEQ ID NO.
142). Using these primers, splicing in the female form would give a band of approximately
575 bp, while inclusion of the male-specific cassette exon would increase this to
approximately 823bp. A band of approx 575bp was seen from each female analyzed, while
a band of approx 823bp was seen from each male analyzed. These bands appear to be
substantially specific to the respective sexes. Sequencing of these bands showed the
correct splicing had occurred in males and females. Marker: SmartLadder™ from Eurogentec,
bands from 1.5kb to 0.2kb are indicated.
[0237] Figure 10, below, is a diagrammatic representation of plasmids LA3545 and LA3604.
S1: shared exon 1; M1: additional sequence included in male-specific exon 1; S2: shared
exon 2 (5' end only); ubi: sequence encoding ubiquitin; tTAV2: sequence encoding tTAV2.
[0238] In several of the LA3545 trangenic lines a sex- and tissue-specific effect was observed:
females are flightless. Two of the lines show a 90-100% female flightless phenotype
one line shows 70% flightless and another 50%. This phenotype is presumably due to
female-specific expression of tTAV2 in the developing flight muscles. The difference
in the phenotypes between the lines is due to positional effects on the expression
of the
AaAct4 promoter. Due to a genes position in the genome expression can be influenced by a
number of factors (heterochromatin or euchromatin regions, enhancer and suppressor
elements, proximity to other genes) which can be seen readily in the fluorescent markers
used to identify transgenics. All eleven lines of LA3545 were identified because they
have different fluorescent profiles, even though they have the same promoters and
marker. This variation is due to positional effects. This would then mean that we
would expect some lines of LA3545 to express more tTAV2 than other because of positional
effects, and those lines that do express more would give a female-specific flightless
phenotype.
[0239] To test this hypothesis we developed a separate
Aedes aegypti line with a tetO-DsRed2 reporter gene (LA3576 see Fig 17and SEQ ID NO. 143), when
crossed with the different LA3545 lines this would allow the visualisation of where
and when the Actin4-tTAV2 was expressing. Out of 8 LA3545 lines crossed to LA3576
all showed female-specific indirect flight muscle fluorescence in late L4 larvae,
pupae and adults. In four of the lines DsRed2 expression appeared to be specific (i.e.
exclusive) to the female indirect flight muscles; in the other four additional tissues
showed expression of DsRed2. This phenomenon, where expression of a transgene depends
in part on the region or point in the genome into which it has inserted, is called
position effect, and will be well known and understood by the person skilled in the
art.
[0240] Using LA3576 proved that the expression of tTAV2 in LA3604 was female-specific, occurs
mainly in the indirect flight muscles and is stage-specific. Several different tetO-effector
constructs were then constructed to analyse their effects. The tetO-MichelobX transgenics
(LA3582, see Fig 15 and SEQ ID NO. 144) when crossed to LA3545 all showed female-specific
flightless phenotypes that could be repressed by tetracycline. This proves that Actin4
can be used to drive an effector gene in a stage, tissue and sex-specific manner.
[0241] Because some lines of LA3545 had a female-specific flightless phenotype without the
presence of an induced effector gene, this showed that tTAV2 could act as an effector
molecule. tTAV2 is composed of a tTA, a tetO binding domain and VP16, a herpes simplex
virus protein. VP16 activates transcription of immediate early viral genes by using
its amino-terminal sequences to attach to one or more host-encoded proteins that recognise
DNA sequences in their promoters. In LA3604 a tetO-VP16 effector gene has been added
to enhance the effect of tTAV2. In three transgenic lines of LA3604 this has caused
a 100% female-specific flightless phenotype when reared without tetracycline, showing
that VP16 is an effective effector molecule. Note that LA3604 has a potential start
codon (ATG) engineered 5' to the alternatively spliced intron. Therefore, in this
construct, the male-specific exon is expected to interrupt the open reading frame
encoding tTAV (ubi-tTAV); since the male-specific sequence contains several stop codons,
this will tend to reduce or eliminate production of functional tTAV in males. By way
of comparison, the male-specific exon is 5' to the start codon of tTAV in LA3545.
However, by inserting a number of start codons 5' to the start codon of tTAV (which
is the first ATG of the female transcript but not of the male transcript), none of
these additional start codons being suitable for efficient production of functional
tTAV due to being out of frame or having intervening stop codons, this arrangement
will also tend to reduce or eliminate production of functional tTAV in males, consistent
with the phenotypic data above.
Example 16: use of ubiquitin and intron positioning
[0242] We have newly made
Cctra-based constructs with the Cctra intron cassette in a variety of different contexts,
i.e. flanked by different sequences. Various lines of transgenic Medfly carrying these
have been constructed. This shows that the system is general and robust, i.e. that
it will work for a wide range of heterologous sequences of interest.
[0243] We also have at least one newly made example of a Cctra-ubi-tTAV fusion giving correct
splicing (DsRed-cctra-ubi-tTAV).
[0244] Preferred examples of the functional protein place the coding sequence for either
ubiquitin or tTA, or their functional mutants and or variants such as tTAV, tTAV2
or tTAV3, 3' to the intron. These are arranged so that these elements are substantially
adjacent to the 3' end of the intron, more preferably such that the coding region
starts within 20 nucleotides or less of the 3' intron boundary), and most preferably,
immediately adjacent the 3' end of the intron, although this is less relevant if the
Ubiquitin system is used.
[0245] Preferred examples of constructs according to the present invention are listed in
Table 4, below. It will be appreciated that LA1188 is not within the scope of the
present invention, as it does not encode a functional protein, i.e. it doesn't work
properly. This is thought to be because of the unexpected use of a splice donor 4
bp 5' to the junction with Cctra intron sequence, leading to a frameshift that is
induced in all splices. It is, therefore, included for the sake of information only.
Table 4
| Construct NO. (Figs #.) |
Species tra intron is from |
position from ATG (bp) |
tra intron is fused to- |
| LA1188 (80) |
Medfly |
+132 |
tTAV |
| LA3014 (29) |
Medfly |
+22 |
ubiquitin |
| LA3166 (30) |
Medfly |
+136 |
ubiquitin |
| LA3097 (27) |
Medfly |
+0 |
tTAV |
| LA3077 (26) |
Medfly |
+61 |
tTAV |
| LA3233 (28) |
Medfly |
+0 |
tTAV2 |
| LA3376 (31) |
Medfly |
+0 |
tTAV2 |
| LA3376 (31) |
B. zonata |
+3 |
reaper KR |
| LA3376 (31) |
B.zonata |
+0 |
tTAV3 |
| LA3242 (32) |
C. rosa |
+3 |
reaperKR |
| LA1038 (14) |
Medfly |
+21 |
Nipp1 (nipper) |
| LA3054 (61) |
Medfly |
+811 |
DsRed-ubiquitin |
| LA3056 (62) |
Medfly |
+811 |
DsRed-ubiquitin |
| LA3488 (63) |
Medfly |
+949 |
Ubiquitin |
| LA3596 (67) |
Medfly |
+949 |
Ubiquitin |
[0246] Table 4 shows constructs which contain a splice control sequence which is derived
from a
tra intron. The introns were derived from C.
capitata (Medfly),
B. zonata or C.
rosa (see column 2). Said intron was inserted within the coding region such that the distance
between the putative initiator ATG and the last nucleotide of the exon immediately
preceding the tra intron was as should be indicated in column 3. Intron is inserted
into or adjacent to coding region for either ubiquitin, tTAV, reaper
KR, nipper or ubiquitin-DsRed as shown in column 4. These were generated and shown to
successfully splice, by RT-PCR or phenotypically in Medfly and, in some cases, also
either in
Drosophila melanogaster (LA3077) or
Anastrepha ludens (LA3097, LA3233, LA3376). In addition, the distance between the ATG and the end of
the exon immediately preceding the tra intron (assuming splicing in F1-like form)
can range from 0bp to at least +949bp without adverse consequences to splicing (see
Table 4, column 3). Thus, it is reasonable to assume that this distance can be up
to at least 900 and preferably up to at least 949 bp.
[0247] Further information on these examples is summarized in Table 5. The preferred option
is to use no endogenous sequence to achieve correct alternative splicing control of
expression (+0bp in table 4). We prefer to insert the tra intron between the flanking
dinucleotides TG...GT in the coding region of the protein of interest to be alternatively
spliced to ensure correct splicing as this may be important, however we will not restrict
ourselves to this if necessary as other flanking nucleotides may function correctly
as well. Examples LA1038, LA3054 and LA3056 include some endogenous flanking exonic
sequence from the natural Cctra gene. In Table 5, if 6 nucleotides or less (including
the ATG start codon) are included of particular fusions to the 3' or 5' of the splice
junction, for the summary purposes of this table these will not be considered to be
part of the fusion. Table 4 can be correlated with table 3 to find which tra intron
(Cctra, Bztra or Crtra) is used in each example. Again, LA1188 is included only for
the purposes of information and falls outside the present invention.
Table 5
| Construct NO. (Figs #.) |
tra intron is fused to 5' |
tra intron is fused to 3' |
exonic tra sequence fused to 5' (bp) |
exonic tra sequence fused to 3' (bp) |
| LA1188 (80) |
Hsp70-tTAV |
tTAV |
+0bp |
+0bp |
| LA3014 (29) |
Hsp70-ubiqutin |
ubiqutin-reaperKR-sv40 |
+0bp |
+0bp |
| LA3166 (30) |
Hsp70-ubiqutin |
ubiqutin-reaperKR-sv40 |
+0bp |
+0bp |
| LA3097 (27) |
Hsp70 |
tTAV-K10 |
+0bp |
+0bp |
| LA3077 (26) |
Hsp70-tTAV |
tTAV-K10 |
+0bp |
+0bp |
| LA3233 (28) |
Hsp70 |
tTAV2-K10 |
+0bp |
+0bp |
| LA3376 (31) |
Hsp70 |
tTAV2-K10 |
+0bp |
+0bp |
| LA3376 (31) |
Sry-a |
tTAV3-sv40 |
+0bp |
+0bp |
| LA3376 (31) |
HB |
reaperKR-sv40 |
+0bp |
+0bp |
| LA3242 (32) |
HB |
reaperKR-sv40 |
+0bp |
+0bp |
| LA1038 (14) |
Hsp70-tra |
Tra-Nippl (nipper)-sv40 |
+22bp |
+20bp |
| LA3054 (61) |
Opie2-nls-DsRed-tra |
tra-ubiquitin-tTAV-sv40 |
+22bp |
+20bp |
| LA3056 (62) |
Opie2-nls-DsRed-tra |
tra-ubiquitin-tTAV-sv40 |
+22bp |
+242bp |
| LA3488 (63) |
Iel-nls-TurboGreen-nls-ubiquitin |
ubiquitin-nls-DsRed-nls-sv40 |
+0bp |
+0bp |
| LA3596 (67) |
Iel-nls-TurboGreen-nls-ubiquitin |
ubiquitin-nls-DsRed-nls-sv40 |
+0bp |
+0bp |
[0248] As mentioned above when an intron is placed 5' to a protein coding region (ORF-X),
it is preferred to position or use ubiquitin 3' to the intron, 5' to ORF-X, thus and
providing female-specific regulation of ORF-X, whilst introducing physical separation
between that sequence and the tra intron, thereby reducing the chance that sequences
within ORF-X will interfere with the splicing of the tra intron.
[0249] Composite constructs and sequences are also envisaged, for example of the form:
X-ubi-Y
with the alternatively spliced intron inserted between coding region X and the region
encoding ubiquitin (ubi), or within the ubiquitin coding region, or between the region
encoding ubiquitin and coding region Y. Thus X will be expressed irrespective of the
splicing of the intron, while Y will only be expressed when the intron is spliced
in a suitable form. Further configurations and arrangements of this general type will
be apparent to the person skilled in the art. Some examples of this are LA3014, LA3054,
LA3056, LA3166, LA3488 and LA3596 which all use ubiquitin fusions in this way demonstrating
the ability of this idea to be successfully applied in transgenic Medfly. Alternative
examples in transgenic mosquitoes include LA3604 and LA3612, showing the wide phylogenetic
applicability of this system in not only different species (mosquitoes and Medfly),
but also in different contexts including AaActin4, Aadsx and Cctra.
[0250] LA3596 (see Fig 67 and SEQ ID NO. 145) is of similar design to LA3488, intended to
generate green fluorescence (by expression of nuclear localised TurboGreen fluorescent
protein) in both sexes, but red fluorescence only in females (by expression of nuclear
localised DsRed2 fluorescent protein). This is accomplished by the fusion of these
two proteins, driven by the Hr5-Ie1 enhancer/promoter cassette, linked together with
a short 11 amino acid linker (SG4 linker) and a coding region comprising ubiquitin
(with one intended point mutation to stabilize the resulting protein by reducing its
propensity to ubiquitin-mediated degradation) and the Cctra intron to limit DsRed2
expression to females. Transgenic Medfly were generated with this construct. Red fluorescence
was limited to females in this line as expected, while green fluorescence was observed
in all males and females. This could be used for sex separation by fluorescence screening
for a particular fluorescent protein, in this case red fluorescence representing expression
of DsRed2.
Example 17: Further Cctra exemplification
[0251] Reference is also made to LA3014 and LA3166 and phenotypic data therefrom in other
Examples.
[0252] We have previously made, and have obtained transgenics with, the Cctra intron in
a functional protein other than tTAV, see LA3014 and LA3166. LA3014 contains a ubiquitin-reaper
KR fusion downstream of a Cctra intron. Phenotypic data shows that LA3014 transgenic
Medfly gave repressible
female-specific lethality. RT-PCR analysis on RNA extracted from adult males and females raised off
tetracycline, using primers and ReaperKR, demonstrate that correct splicing was occurring
in females (508bp band) and no such band was found in males (Figure 37). LA3166 is
another construct with the Cctra intron placed inside the ubiquitin coding region
fused to reaper
KR, but placed in a different position in ubiquitin. LA3166 also produces a dominant
repressible female-specific lethal effect in Medfly.
[0253] LA1038 is a new example of the use of the Cctra intron in a different sequence context,
here placed in a fragment of Nipp1Dm called 'nipper' that also splices correctly in
transgenic Medfly when analysed by RT-PCR (Figure 12). LA670 was required as a source
of tTAV to drive expression of the alternatively spliced nipper.
[0254] We have also newly made, and have obtained transgenics with, 'intron-only' Cctra-based
constructs with the intron in a different gene (many of the above examples, unless
otherwise apparent, are in tTAV or one of its variants, i.e. tTAV2 or tTAV3). These
constructs work as predicted. This is an important result, thus showing that there
are not essential exonic sequences in Cctra that we have simply duplicated (in function,
if not necessarily in sequence) by chance, in tTAV. We also have ubi-rpr
KR constructs of this type (LA3014 and LA3166), which also validates the ubiquitin fusion
method described above. The ubiquitin fusion method is further exemplified by RT-PCR
analysis of LA3054, LA3056 and LA3488 (Figures 11, 13, 14), and as described in Example
16, above.
[0255] Figure 11: Gel showing sex- specific splicing of intron(s) derived from Cctra (780bp band in
females) in Ceratitis capitata transformed with LA3488. Splicing in the F1 form would yield a product of approximately 780bp. A band of
this size is clearly visible from females (lane 4), but not from males, nor in the
lanes with reactions from which the reverse transcriptase enzyme was omitted ("no
RT"). Therefore, the Cctra-derived intron is capable of sex-specific alternative splicing
in this novel sequence context. Lane 1: Marker (SmartLadder™ from Eurogentec, bands
of approx 0.8, 1.0 and 1.5kb are indicated); Lanes 2 and 3:
Ceratitis capitata LA3488/+ males (RT and no RT control, respectively); Lanes 4 and 5:
Ceratitis capitata LA3488/+ females (RT and noRT control, respectively).
[0256] Figure 12: Gel showing sex- specific splicing of intron(s) derived from Cctra in Ceratitis capitata transformed with LA1038. Splicing in the F1 form would yield a product of approximately 230bp. A band of this
size is clearly visible from females (lanes 1, 2, 7, 8, 9 and 10), but not from males.
Therefore, the Cctra-derived intron is capable of sex-specific alternative splicing
in this novel sequence context. Lane 15: Marker (SmartLadder™ from Eurogentec, bands
of approx 0.2, 0.4 and 0.6kb are indicated); Lanes 1, 2, 7, 8, 9 and 10:
Ceratitis capitata LA670; LA1038 females; Lanes 3, 4, 5, 6, 11, 12, 13 and 14:
Ceratitis capitata LA670; LA1038 males.
[0257] Figure 13: Gel showing sex- specific splicing of intron(s) derived from CcTra in Ceratitis capitata transformed with LA3054. Splicing in the F1 form would yield a product of approximately 340 bp. A band of
this size is clearly visible in lane 7, but not from males. Therefore, the Cctra-derived
intron is capable of sex-specific alternative splicing in this novel sequence context.
Lane 1: Marker (SmartLadder™ from Eurogentec, bands of approx 0.4, 0.6, 0.8 and 1.0kb
are indicated); Lanes 2-5:
Ceratitis capitata LA3054 males; Lane 7:
Ceratitis capitata LA3054 female.
[0258] Figure 14: Gel showing sex- specific splicing of intron(s) derived from Cctra in Ceratitis capitata transformed with LA3056. Splicing in the F1 form would yield a product of approximately 200 bp. A band of
this size is clearly visible from a female (lane 6), but not from males (lanes 2-4).
Therefore, the Cctra-derived intron is capable of sex-specific alternative splicing
in this novel sequence context. Lane 1: Marker (SmartLadder™ from Eurogentec, bands
of approx 0.2, 0.4, 0.6 and 0.8kb are indicated); Lanes 2-5:
Ceratitis capitata LA3056/+ males; Lanes 6-7:
Ceratitis capitata LA3056/+ females.
[0259] Figure 15: Gel showing sex- specific splicing of intron(s) derived from BzTra in Anastrepha ludens transformed with LA3376. Splicing in the F1 form would yield a product of approximately 672 bp. A band of
this size is clearly visible from females (lane 4), but not from males, nor in the
lanes with reactions from which the reverse transcriptase enzyme was omitted ("no
RT"), primers used were SRY and AV3F. Therefore, the Bztra-derived intron is capable
of sex-specific alternative splicing in this novel sequence context and species. Lane
1: Marker (SmartLadder™ from Eurogentec, bands of approx 0.6, 0.8, and 1.0kb are indicated);
Lanes 2 and 3:
Anastrepha ludens LA3376/+ males (RT and no RT control, respectively); Lanes 4 and 5:
Anastrepha ludens LA3376/+ females (RT and no RT control, respectively).
[0260] Figure 18 and SE ID NOs 149 and 150 show DSX minigene1, DSX minigene2 sequences and LA3619
plasmid map.
[0261] Figs 19-51 are as per Examples 1-9 above. Figs 52-58, 68 and 69 show various plasmid
diagrams and sequences. Figs 59-60 are described above and Figs 61-66 show various
further plasmid diagrams and sequences. Fig 67 is pLA3596, as discussed elsewhere.
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SEQUENCE ANNOTATIONS
[0263] The following relates to the various plasmids of the present and highlights the position
of certain preferred elements therein.
<223> Sequence of pLA3359 (SED ID NO. 47).
<***> Key features include:
- 1. Anopheles gambiae dsx (Agdsx) mini-gene, [a mini-gene is a recombinant sequence
derived from a particular gene (the Agdsx gene in this example) by ligating together
non-contiguous segments while retaining original 5'-3' order; this is equivalent to
deletion of some internal segments from a longer fragment of genomic sequence derived
from the gene], (1-3135): including Agdsx part of exon3, exon 4a (female), exon 4b
(female) and part of exon5 (male and female).
<***> Exons derived from Agdsx from positions 426 to 560 (part of exon 3); 1068 to
2755 (including part of exon 4, found in females); 1809 to 2755 (including part of
exon 4, found in females); and 2914 to 3135 (including part of exon 5, found in males).
<***> Alternatively spliced transcript starts in segment derived from baculovirus
AcMNPV Ie1 (immediate early 1) at position -8031 (Ie1 fragment is from position 7431
to 8060).
<***> Included feature:
- 1. additional intron derived from Drosophila scraps gene ('scraps intron') upstream
to Agdsx sequence from position 8075 to 8137.
<223> Sequence of pLA3433 (SED ID NO. 48).
<***> Key features include:
- 1. Agdsx mini-gene (778-4623): including Agdsx part of exon 2, exon3, exon 4a (female),
exon 4b (female) and part of exon5 (male and female).
<***> Exons derived from Agdsx from position 778 to 908 (part of exon 2); 1913 to
2048 (part of exon 3); 2556 to 2642 (part of exon 4a); 3297 to 4243 (part of exon
4b) and 4402 to 4623 (part of exon 5).
<***> Alternatively spliced transcript starts in segment derived from baculovirus
AcMNPV Ie1 (immediate early 1) at position -606 (Ie1 fragment is from position 6 to
635).
<***> Included feature:
- 1. additional intron derived from Drosophila scraps gene ('scraps intron') upstream
to Agdsx sequence from position 650 to 712.
<223> Sequence of pLA3491.
<***> Key features include:
- 1. Aedes aegypti dsx (Aadsx) mini-gene: including part of Aadsx exon 4, exon5a (female),
exon 5b (female), and part of exon6 (male and female).
<***> Exons derived from Aadsx from position 1316 to 1450 (part of exon 4); 2626 to
3761 (part of exon 5a); 3293 to 3761 (part of exon 5b); and 5215 to 5704 (part of
exon 6).
<***> Part of the F1 transcript is predicted to comprise nucleotides -1174-1450, 2626-3761,
5215-∼5850.
<***> Part of the F2 transcript is predicted to comprise nucleotides ∼1174-1450, 3293-3761,
5215-∼5850.
<***> Part of the F3 transcript is predicted to comprise nucleotides ∼1174-1450, 2626-3083,
3293-3761, 5215-∼5850.
<***> Part of the M1 transcript is predicted to comprise nucleotides ∼1174-1450, 5215-∼5850.
<***> Alternatively spliced transcript starts in segment derived from baculovirus
AcMNPV Ie1 (immediate early 1) at position ∼1174 (Ie1 fragment is from position 574
to 1203).
<***> Included feature:
- 1. additional intron derived from Drosophila scraps gene ('scraps intron') upstream
to Aadsx sequence from position 1218 to 1280.
<223> Sequence of pLA3646.
<***> Key features include:
- 1. Aadsx mini-gene (17218-11707): including part of Aadsx exon 4 from position 17113
to 16979, exon 5a from position 15803 to 15025 + 14010 to 13650, exon 5b from position
15136 to 15025 + 14010 to 13650 and exon 6 from position 12196 to 11707 (note: reverse
orientation). <***> part of exon 4 contains 4 point mutations relative to wild type
at positions 17087 (ATG-ACG), 17053 (ATG-ACG), 17050 (ATG-ACG) and 17041 (ATG-ACG)
(note: reverse orientation); part of exon 5a and 5b contain 3 point mutations relative
to wild type at positions 15129 (ATG-ATA), 15116 (ATG-ATA) and 15113 (ATG-ATA) (note:
reverse orientation). All of these mutations are to eliminate ATG sequences.
<***> tTAV2 is inserted in the overlapping exons 5a and 5b from position 15024 to
14011 (note: reverse orientation).
<***> Alternatively spliced transcript starts in hsp70 derived fragment at position
∼17312 (hsp70 fragment is from position 17354 to 17225); (note: reverse orientation).
<***> Included feature:
- 1. additional intron derived from Drosophila scraps gene ('scraps intron') upstream
to Aadsx sequence from position 1107 to 1045 (note: reverse orientation)
Sequence of pLA3435 (SED ID NO. 46).
<223> Key features include:
- 1. Bombyx mori dsx (Bmdsx) minigene (1411-3161) with an exogenous linker between fused
female exons 3 and 4.
<***> Fragment of shared exon two (1411bp-1554b)
<***> Part of female specific exon three (2121bp-2202) fused to part of female specific
exon 4 (2225bp-2290bp) using an exogenous linker (2203bp-2224bp)
<***> Fragment of shared exon five (3007bp-3161bp)
<***> A female dsx mini-gene splicing product is encoded by 1411-1554 + 2121-2290
+3007-3161.
<***> A male dsx mini-gene splicing product is encoded by 1411-1554 +3007-3161.
<***> Transcription is predicted to start at approximately position ∼1239 within the
segment derived from baculovirus AcMNPV Ie1 (immediate early 1) promoter (639bp-1268bp).
<223> Sequence of pLA3534.
<***> Key features include:
- 1. Aadsx mini-gene (6996-4425): containing Aadsx exon 4, part of exon5a (female) and
part of exon 5b (female), inclusive of Aadsx intron fragments.
<***> Exons derived from Aadsx from position 6968 to 6834 (part of exon 4), 5462 to
4425 (part of exon 5a) and 4795 to 4425 (part of exon 5b); (note reverse orientation).
<***> Part of the F1 transcript is predicted to comprise nucleotides -7146-6834, 5462-∼4300
(note: reverse orientation).
<***> Part of the F2 transcript is predicted to comprise nucleotides -7146-6834, 4795-∼4300
(note: reverse orientation).
<***> Part of the F3 transcript is predicted to comprise nucleotides -7146-6834, 5462-5005,
4795-∼4300 (note: reverse orientation).
<***> Alternatively spliced transcript starts in segment derived from baculovirus
AcMNPV Ie1 (immediate early 1) at position ∼7146 (Ie1 fragment is from position 7746
to 7117, reverse orientation).
<223> Sequence of pLA3612.
<***> Key features include:
- 1. Ubiquitin-tTAV2 coding region inserted into a female exon of Aadsx gene.
<***> Ubiquitin-tTAV2 is from position 15185-16429 in Aadsx (ubiquitin is from 15185-15412;
tTAV2 is from 15413-16429), inclusive of start and stop codon.
<***> Sequence derived from Aadsx: 13150-15184, 16438-18805.
<***> Aadsx-ubiquitin-tTAV2 alternatively spliced transcript starts in hsp70 derived
segment (hsp70 fragment is from 13014-13143).
<223> Sequence of pLA3619.
<***> Key features include:
- 1. tTAV2 coding region inserted into a female exon of Aadsx gene.
<***> Sequence derived from Aadsx: 5635-3641, 2610-243 (note: reverse orientation).
<***> Aadsx-tTAV2 alternatively spliced transcript starts in hsp70 derived segment
from 5642-5771 (note: reverse orientation).
<***> tTAV2 transcript is predicted to be translated between 2619-3635, inclusive
of start and stop codon (note: reverse orientation).
<223> Sequence of pLA3545.
<***> Key features include:
- 1. AaActin4 promoter and 5' UTR including first intron regulates tTAV expression.
<***> Sequence derived from AaActin4 is from position 923-4285.
<***> Alternatively spliced transcript is predicted to start from approximately -2366.
<***> The first intron from AaActin4 (female splice variant) is from 2458-4259.
<***> tTAV is predicted to be translated between 4300-5316, inclusive of start and
stop codon.
<223> Sequence of pLA3604.
<***> Key features include:
- 1. AaActin4 promoter and 5' UTR regulates ubiquitin-tTAV2 expression.
<***> Sequence derived from AaActin4 is from position 5795-2407 (note: reverse orientation).
<***> Alternatively spliced transcript is predicted to start from approximately -4353
(note: reverse orientation).
<***> The first intron from AaActin4 (female splice variant) is from 2455-4254 (note:
reverse orientation).
<***> Ubquitin-tTAV2 transcript is predicted to be translated from a start codon engineered
in the first exon of AaAct4 gene at 4299-4297 (ubiquitin is from 2406-2179; tTAV2
is from 2178-1162); (note: reverse orientation).
<223> Sequence of pLA3641.
<***> Key features include:
- 1. tTAV coding region inserted into a female exon of CodlingDsx gene.
<***> tTAV is from position 2731-3747 in CodlingDsx gene.
<***> Dsx-tTAV alternatively spliced transcript starts in hsp70 derived segment (hsp70
fragment is from 4811-4940).
<***> tTAV transcript is predicted to be translated between 2731-3747, inclusive of
start and stop codon (note: reverse orientation).
<223> Sequence of pLA3570
<***> Key features include:
- 1. tTAV coding region inserted into a female exon of PBW-Dsx gene.
<***> tTAV coding region is from 2336-3352.
<***> Dsx-tTAV alternatively spliced transcript starts in hsp70 derived segment (hsp70
fragment is from 4683-4812).
<***> tTAV transcript is predicted to be translated between 2336-3352, inclusive of
start and stop codon (note: reverse orientation).
<223> Sequence of pLA1188 (SED ID NO.49)
<***> Key features include:
- 1. tTAV coding region with inserted Cctra intron.
<***> Cctra intron is from position 3905-2561 in tTAV (note: reverse orientation).
<***> tTAV alternatively spliced transcript starts in hsp70 derived segment at position
4217 (hsp70 fragment is from 4260-4131); (note: reverse orientation).
<***> tTAV F1 transcript is predicted to be translated between 4040-1679 (note: reverse
orientation).
<***> Included feature:
- 1. Adh intron within predicted F1 transcript from position 4118-4049 (note: reverse
orientation).
<223> Sequence of pLA3077 (SED ID NO. 50).
<***> Key features include:
- 1. tTAV coding region with inserted Cctra intron.
<***> Cctra intron is from position 3975-2631 in tTAV (note: reverse orientation).
<***> tTAV alternatively spliced transcript starts in hsp70 derived segment at position
-4217 (hsp70 fragment is from 4260-4131); (note: reverse orientation).
<***> tTAV F1 transcript is predicted to be translated between 4039-1678, inclusive
of start and stop codon (note: reverse orientation).
<***> Included feature:
- 1. Adh intron within predicted F1 transcript from position 4117-4048 (note: reverse
orientation).
<223> Sequence of pLA3097 (SED ID NO. 51).
<***> Key features include:
- 1. tTAV coding region with inserted Cctra intron.
<***> Cctra intron is from position 3282-1938 in tTAV (note: reverse orientation).
<***> tTAV alternatively spliced transcript starts in hsp70 derived segment at position
-3382 (hsp70 fragment is from 3425-3296); (note: reverse orientation).
<***> tTAV F1 transcript is predicted to be translated between 3285-924, inclusive
of start and stop codon (note: reverse orientation).
<223> Sequence of pLA3233 (SED ID NO. 52).
<***> Key features include:
- 1. tTAV2 coding region with inserted Cctra intron.
<***> Cctra intron is from position 3289-1945 in tTAV2 (note: reverse orientation).
<***> tTAV2 alternatively spliced transcript starts in hsp70 derived segment at position
-3389 (hsp70 fragment is from 3432-3303); (note: reverse orientation).
<***> tTAV2 F1 transcript is predicted to be translated between 3292-931, inclusive
of start and stop codon (note: reverse orientation).
<223> Sequence of pLA3014 (SED ID NO. 53).
<***> Key features include:
- 1. ubi-reaper[KR] coding region with inserted Cctra intron.
<***> Cctra intron is from position 3356-4700 in ubi-reaper[KR].
<***> ubi-reaper[KR] alternatively spliced transcript starts in hsp70 derived segment
at position ∼3234 (hsp70 fragment is from 3191-3320).
<***> ubi-reaper[KR] F1 transcript is predicted to be translated between 3331-5143,
inclusive of start and stop codon (ubiquitin is from 3331-3355, 4701-4948; reaper[KR]
is from 4949-5143).
<223> Sequence of pLA3166 (SED ID NO. 54).
<***> Key features include:
- 1. ubi-reaper[KR] coding region with inserted Cctra intron.
<***> Cctra intron is from position 9987-8643 in ubi-reaper[KR] (note: reverse orientation).
<***> ubi-reaper[KR] alternatively spliced transcript starts in hsp70 derived segment
at position ∼10227 (hsp70 fragment is from 10270-10141); (note: reverse orientation).
<***> ubi-reaper[KR] F1 transcript is predicted to be translated between 10126-8359,
inclusive of start and stop codon (ubiquitin is from 10126-9988, 8642-8554; reaper[KR]
is from 8553-8359); (note: reverse orientation).
<223> Sequence of pLA3376 (SED ID NO. 55).
<***> Key features include:
- 1. tTAV2 coding region with inserted Cctra intron.
- 2. tTAV3 coding region with inserted Bztra intron.
- 3. reaper[KR] coding region with inserted Bztra intron.
<***> Cctra intron is from position 3289-1945 in tTAV2 (note: reverse orientation).
<***> Bztra intron is from position 5981-5014 in tTAV3 (note: reverse orientation).
<***> Bztra intron is from position 16391-17358 in reaper[KR].
<***> tTAV2 alternatively spliced transcript starts in hsp70 derived segment at position
-3389 (hsp70 fragment is from 3432-3303); (note: reverse orientation).
<***> tTAV3 alternatively spliced transcript starts in sry-alpha derived segment at
position -6019 (sry-alpha fragment is from 6243-5999); (note: reverse orientation).
<***> reaper[KR] alternatively spliced transcript starts in hunchback derived segment
at position ∼16339 (hunchback fragment is from 16289-16372).
<***> tTAV2 F1 transcript is predicted to be translated between 3292-931, inclusive
of start and stop codon (note: reverse orientation).
<***> tTAV3 F1 transcript is predicted to be translated between 5984-4006, inclusive
of start and stop codon (note: reverse orientation).
<***> reaper[KR] F1 transcript is predicted to be translated between 16385-17550,
inclusive of start and stop codon.
<223> Sequence of pLA3242 (SED ID NO. 56).
<***> Key features include:
- 1) tTAV coding region with inserted Cctra intron.
- 2) reaper[KR] coding region with inserted Crtra intron.
<***> Cctra intron is from position 3282-1938 in tTAV (note: reverse orientation).
<***> Crtra intron is from position 5488-4180 in reaperKR (note: reverse orientation).
<***> reaperKR alternatively spliced transcript starts in hunchback derived segment
at position -5540 (hunchback fragment is from 5590-5507); (note: reverse orientation).
<***> tTAV alternatively spliced transcript starts in hsp70 derived segment at position
-3382 (hsp70 fragment is from 3425-3296); (note: reverse orientation).
<***> reaperKR F1 transcript is predicted to be mainly translated between 4088-5494,
inclusive of start and stop codon (note: reverse orientation).
<***> tTAV F1 transcript is predicted to be mainly translated between 924-3285, inclusive
of start and stop codon (note: reverse orientation).
<223> Sequence of pLA1172 (SED ID NO. 106).
<***> Key features include:
- 1. tTAV coding region between AaActin4 derived fragments.
<***> AaActin4 derived fragments are from 7868-11257 and 12366-13100.
<***> tTAV transcript is predicted to be translated between 11342-12358, inclusive
of start and stop codon.
<***> AaActin4-tTAV transcript is predicted to start at position -9312.
<***> AaActin4 contains an intron (female-type splice variant) from position 9403-11204.
<223> Sequence of pLA1038 (Fig 12).
<***> Key features include:
- 1. Fragment of Nipp1Dm ('nipper') coding region with inserted Cctra intron with flanking
tra exonic sequence.
<***> Cctra intron is from position 3365-4709 in nipper.
<***> Cctra intron is flanked by Cctra exonic sequence at positions 3343-3364 and
4710-4729. <***> nipper alternatively spliced transcript starts in hsp70 derived segment
at position -3243 (hsp70 fragment is from 3200-3329).
<***> nipper F1 transcript is predicted to be translated between 3340-5014, inclusive
of start and stop codon.
<223> Sequence of pLA3054 (SED ID NO. 158).
<***> Key features include:
- 1. DsRed-ubi-tTAV coding region with inserted Cctra intron with flanking tra exonic
sequence.
<***> Cctra intron is from position 3509-2165 in DsRed-ubi-tTAV (note: reverse orientation).
<***> Cctra intron is flanked by Cctra exonic sequence at positions 3531-3510 and
2164-2145 (note: reverse orientation).
<***> DsRed-ubi-tTAV alternatively spliced transcript starts either in hsp70 derived
segment at position ∼3243 (hsp70 fragment is from 4930-4801) or Opie2 derived segment
at position -4353 (Opie2 fragment is from 4795-4255); (note: reverse orientation).
<***> DsRed-ubi-tTAV F1 transcript is predicted to be translated between 4320-888,
inclusive of start and stop codon (DsRed is from 4212-3538; ubiquitin is from 2135-1908;
tTAV is from 1907-888); (note: reverse orientation).
<223> Sequence of pLA3056 (SED ID NO. 159).
<***> Key features include:
- 1. DsRed-ubi-tTAV coding region with inserted Cctra intron with flanking tra exonic
sequence.
<***> Cctra intron is from position 3731-2387 in DsRed-ubi-tTAV (note: reverse orientation).
<***> Cctra intron is flanked by Cctra exonic sequence at positions 3753-3732 and
2386-2145 (note: reverse orientation).
<***> DsRed-ubi-tTAV alternatively spliced transcript starts either in hsp70 derived
segment at position -5109 (hsp70 fragment is from 5152-5023) or Opie2 derived segment
at position -4575 (Opie2 fragment is from 5017-4477); (note: reverse orientation).
<***> DsRed-ubi-tTAV F1 transcript is predicted to be translated between 4542-888,
inclusive of start and stop codon (DsRed is from 4434-3760; ubiquitin is from 2135-1908;
tTAV is from 1907-888); (note: reverse orientation).
<***> Included feature:
- 1. additional intron derived from Cctra gene (second intron of Cctra F1 transcript)
within predicted F1 transcript from position 2222-2168 (note: reverse orientation).
<223> Sequence of pLA3488 (SED ID NO. 160).
<***> Key features include:
- 1. TurboGreen-ubi-DsRed coding region with inserted Cctra intron.
<***> Cctra intron is from position 2263-3607 in TurboGreen-ubi-DsRed.
<***> TurboGreen-ubi-DsRed alternatively spliced transcript starts in segment derived
from baculovirus AcMNPV Ie1 (immediate early 1) at position ∼1180 (Ie1 fragment is
from 580-1209).
<***> TurboGreen-ubi-DsRed F1 transcript is predicted to be translated between 1311-4467,
inclusive of start and stop codon (TurboGreen is from 1311-2093; SG4 linker is from
2094-2123; ubiquitin is from 2124-3696, inclusive of Cctra intron; DsRed is from 3697-4467).
<***> Included feature:
- 1. additional intron derived from Drosophila scraps gene ('scraps intron') within
predicted F1 transcript from position 1224-1286.
<223> Sequence of pLA3596 (SED ID NO. 145).
<***> Key features include:
- 1. TurboGreen-ubi-DsRed2 coding region with inserted Cctra intron.
<***> Cctra intron is from position 5947-7291 in TurboGreen-ubi-DsRed2.
<***> TurboGreen-ubi-DsRed2 alternatively spliced transcript starts in segment derived
from baculovirus AcMNPV Ie1 (immediate early 1) at position -4864 (Ie1 fragment is
from 4264-4893).
<***> TurboGreen-ubi-DsRed2 F1 transcript is predicted to be translated between 4995-8148,
inclusive of start and stop codon (TurboGreen is from 4995-5777; SG4 linker is from
5778-5807; ubiquitin is from 5808-7380, inclusive of Cctra intron; DsRed2 is from
7381-8151).
<***> Included feature:
- 1. additional intron derived from Drosophila scraps gene ('scraps intron') within
predicted F1 transcript from position 4908-4970.
- 2. intended amino acid mutation compared to LA3488 at position 7294-7296.
SEQUENCE LISTING
[0264]
<110> Oxitec Limited
<120> Expression System
<130> USP92438
<150> PCT/GB2004/003263
<151> 2004-07-28
<160> 162
<170> PatentIn version 3.3
<210> 1
<211> 13
<212> DNA
<213> artificial
<220>
<223> Ceratitis capitata tra consnesus sequence
<400> 1
tcwwcratca aca 13
<210> 2
<211> 10
<212> DNA
<213> Artificial
<220>
<223> LA3097 flanking sequence
<400> 2
agccaccatg 10
<210> 3
<211> 10
<212> DNA
<213> artificial
<220>
<223> LA3097 flanking sequence
<400> 3
gtcagccgcc 10
<210> 4
<211> 21
<212> DNA
<213> artificial
<220>
<223> primer 688 - iel-transcr
<400> 4
gttgcaagtt gacactggcg g 21
<210> 5
<211> 21
<212> DNA
<213> artificial
<220>
<223> primer 790 - Aedsx-m-r2
<400> 5
ccactgtgta aggcttcctc c 21
<210> 6
<211> 21
<212> DNA
<213> artificial
<220>
<223> primer 761 - Aedsx-fem-r
<400> 6
ggatggttgg ttgaagatcc g 21
<210> 7
<211> 21
<212> DNA
<213> artificial
<220>
<223> primer AedsxR1
<400> 7
actgcgcaac tctacaccgt c 21
<210> 8
<211> 13
<212> RNA
<213> artificial
<220>
<223> Pane et al consensus sequence
<400> 8
ucwwcrauca aca 13
<210> 9
<211> 13
<212> RNA
<213> artificial
<220>
<223> Scali et al 2005 consensus sequence
<400> 9
ucwwcaauca aca 13
<210> 10
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 10
tcaacaagca aca 13
<210> 11
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 11
ttatcaaaca aca 13
<210> 12
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 12
tcatcaatta aaa 13
<210> 13
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 13
tcatcaatca aac 13
<210> 14
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 14
tcttcaacca acc 13
<210> 15
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 15
cctacaatct aca 13
<210> 16
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 16
tcttagatca aaa 13
<210> 17
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 17
tcttcgatca tta 13
<210> 18
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 18
ccaacaatct aca 13
<210> 19
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 19
tcaaagatca cca 13
<210> 20
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 20
tcttcggtcg acg 13
<210> 21
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 21
tcgacaaaca aaa 13
<210> 22
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 22
tattcaaaca acg 13
<210> 23
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 23
ttttcgataa aaa 13
<210> 24
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 24
tcttcagtct gca 13
<210> 25
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 25
gattcaatca tca 13
<210> 26
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 26
ttatcgagca aaa 13
<210> 27
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 27
tcataactca aga 13
<210> 28
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 28
tcagaaatca aaa 13
<210> 29
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 29
tctttaattt aca 13
<210> 30
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 30
tttacaatcc tea 13
<210> 31
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 31
tcatagatca gga 13
<210> 32
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 32
acctcaaaca aca 13
<210> 33
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 33
tcatcgaaca ccc 13
<210> 34
<211> 1014
<212> DNA
<213> artificial
<220>
<223> Open reading frame of tTAV construct
<400> 34

<210> 35
<211> 338
<212> PRT
<213> artificial
<220>
<223> Protein sequence of tTAV
<400> 35

<210> 36
<211> 1014
<212> DNA
<213> artificial
<220>
<223> Open reading frame of tTAV2
<400> 36

<210> 37
<211> 337
<212> PRT
<213> artificial
<220>
<223> Protein sequence of tTAV2
<400> 37


<210> 38
<211> 1011
<212> DNA
<213> artificial
<220>
<223> Open reading frame of tTAV3
<400> 38


<210> 39
<211> 336
<212> PRT
<213> artificial
<220>
<223> Protein sequence of tTAV3
<400> 39


<210> 40
<211> 568
<212> DNA
<213> Pectinophora gossypiella
<400> 40

<210> 41
<211> 610
<212> DNA
<213> Pectinophora gossypiella
<400> 41

<210> 42
<211> 449
<212> DNA
<213> Pectinophora gossypiella
<220>
<221> misc_feature
<222> (26)..(26)
<223> n is a, c, g, or t
<400> 42


<210> 43
<211> 28774
<212> DNA
<213> Aedes aegypti
<400> 43











<210> 44
<211> 3399
<212> DNA
<213> Cydia pomonella
<220>
<221> misc_feature
<222> (1179).. (1184)
<223> n is a, c, g, or t
<400> 44


<210> 45
<211> 996
<212> DNA
<213> Cydia pomonella
<400> 45

<210> 46
<211> 6751
<212> DNA
<213> artificial
<220>
<223> Sequence of pLA3435-Bombyx mori-dsx construct/plasmid.
<220>
<221> misc_feature
<222> (1617).. (1622)
<223> n is a, c, g, or t
<400> 46



<210> 47
<211> 8183
<212> DNA
<213> artificial
<220>
<223> Sequence of pLA3359-Anopheles gambiae dsx construct
<400> 47




<210> 48
<211> 7342
<212> DNA
<213> artificial
<220>
<223> Sequence of pLA3433-Agdsx (Anopheles gambiae) construct with exon 2 included
<400> 48




<210> 49
<211> 11868
<212> DNA
<213> artificial
<220>
<223> 49 Sequence of pLA1188-cctra intron construct
<400> 49





<210> 50
<211> 11868
<212> DNA
<213> artificial
<220>
<223> Sequence of pLA3077-a Cctra intron-tTAV construct.
<400> 50





<210> 51
<211> 11788
<212> DNA
<213> artificial
<220>
<223> 51 Sequence of pLA3097-a Cctra intron-tTAV construct.
<400> 51





<210> 52
<211> 13292
<212> DNA
<213> artificial
<220>
<223> Sequence of pLA3233-Cctra-intron-tTAV2 construct.
<400> 52






<210> 53
<211> 14713
<212> DNA
<213> artificial
<220>
<223> Sequence of pLA3014-Cctra-intron-Ubiquitin-reaperKR construct.
<400> 53






<210> 54
<211> 15848
<212> DNA
<213> artificial
<220>
<223> Sequence of pLA3166-Cctra intron-Ubiquitin-reaperKR construct.
<400> 54







<210> 55
<211> 17802
<212> DNA
<213> artificial
<220>
<223> Sequence of pLA3376-Bztra intron-reaperKR and Bztra-intron-tTAV3.
<400> 55







<210> 56
<211> 15134
<212> DNA
<213> artificial
<220>
<223> Sequence of pLA3242-Crtra intron-reaperKR construct.
<400> 56






<210> 57
<211> 1403
<212> DNA
<213> artificial
<220>
<223> SEQ ID N0. 57 Partial sequence of a male transcript generated in Drosophila
melanogaster from LA3077 transformants that differs to the sequence generated in Medfly
LA3077 lines. T
<400> 57


<210> 58
<211> 972
<212> DNA
<213> Bactrocera zonata
<400> 58

<210> 59
<211> 1312
<212> DNA
<213> Ceratitis rosa
<400> 59


<210> 60
<211> 21
<212> DNA
<213> artificial
<220>
<223> spl-agdsx-e3 primer
<400> 60
cgagcccaat ggctgttgga g 21
<210> 61
<211> 22
<212> DNA
<213> artificial
<220>
<223> spl-agdsx-m primer
<400> 61
gtcaaggttc agggcccgat cg 22
<210> 62
<211> 21
<212> DNA
<213> artificial
<220>
<223> primer spl-agdsx-e3
<400> 62
cgagcccaat ggctgttgga g 21
<210> 63
<211> 22
<212> DNA
<213> artificial
<220>
<223> spl-agdsx-m primer
<400> 63
gtcaaggttc agggcccgat cg 22
<210> 64
<211> 20
<212> DNA
<213> artificial
<220>
<223> aedesxF1 primer
<400> 64
tcaatggctc ctggagaagc 20
<210> 65
<211> 25
<212> DNA
<213> artificial
<220>
<223> aedesxR5 primer
<400> 65
accattcttg cagaagtctt gggac 25
<210> 66
<211> 19
<212> DNA
<213> artificial
<220>
<223> aedesxR2 primer
<400> 66
aacattctcc gcgcacagg 19
<210> 67
<211> 23
<212> DNA
<213> artificial
<220>
<223> Agexon1 primer
<400> 67
gacgctcgct ctggtacagt tcg 23
<210> 68
<211> 20
<212> DNA
<213> artificial
<220>
<223> Tra (tTAV) seq+ primer
<400> 68
cctgccagga ctcgccttcc 20
<210> 69
<211> 23
<212> DNA
<213> artificial
<220>
<223> Agexon1 primer
<400> 69
gacgctcgct ctggtacagt tcg 23
<210> 70
<211> 26
<212> DNA
<213> artificial
<220>
<223> Exon 3 primer
<400> 70
gttgtcgctt tgactggcaa tgtcgc 26
<210> 71
<211> 632
<212> DNA
<213> Pectinophora gossypiella
<400> 71

<210> 72
<211> 222
<212> DNA
<213> Drosophila melanogaster
<400> 72

<210> 73
<211> 74
<212> PRT
<213> Drosophila melanogaster
<400> 73

<210> 74
<211> 34
<212> DNA
<213> artificial
<220>
<223> primer
<400> 74
caagcaaagt gaacacgtcg ctaagcgaaa gcta 34
<210> 75
<211> 22
<212> DNA
<213> artificial
<220>
<223> primer
<400> 75
gcgggtggca gctggtgtac tg 22
<210> 76
<211> 34
<212> DNA
<213> artificial
<220>
<223> primer
<400> 76
caagcaaagt gaacacgtcg ctaagcgaaa gcta 34
<210> 77
<211> 24
<212> DNA
<213> artificial
<220>
<223> primer
<400> 77
gcggaacgac ttggcgttat tgcg 24
<210> 78
<211> 28
<212> DNA
<213> artificial
<220>
<223> primer
<400> 78
ggaagggtcc ttacgctata gagcgcag 28
<210> 79
<211> 31
<212> DNA
<213> artificial
<220>
<223> primer
<400> 79
ccaggcgaag ttgttattaa gcgtagattt g 31
<210> 80
<211> 33
<212> DNA
<213> artificial
<220>
<223> primer
<400> 80
cgtcgctttg aaacagaggc tttgagcctt ctc 33
<210> 81
<211> 48
<212> DNA
<213> artificial
<220>
<223> primer
<400> 81
gctagcaacc accatggcgg taattctaat tacttactaa atatagtg 48
<210> 82
<211> 41
<212> DNA
<213> artificial
<220>
<223> primer
<400> 82
ccgggatgta gaaggccacc tgtgaatacg gttaatgtca c 41
<210> 83
<211> 31
<212> DNA
<213> artificial
<220>
<223> primer
<400> 83
cagtcagtca cgagtttgtt accactgcga c 31
<210> 84
<211> 22
<212> DNA
<213> artificial
<220>
<223> primer
<400> 84
gcgggtggca gctggtgtac tg 22
<210> 85
<211> 21
<212> DNA
<213> artificial
<220>
<223> primer
<400> 85
cggagcacat ctgatagaac g 21
<210> 86
<211> 23
<212> DNA
<213> artificial
<220>
<223> primer
<400> 86
cgcggctgta ggcgctgccg ctc 23
<210> 87
<211> 31
<212> DNA
<213> artificial
<220>
<223> primer
<400> 87
ccaggcgaag ttgttattaa gcgtagattt g 31
<210> 88
<211> 33
<212> DNA
<213> artificial
<220>
<223> primer
<400> 88
cgtcgctttg aaacagaggc tttgagcctt ctc 33
<210> 89
<211> 52
<212> DNA
<213> artificial
<220>
<223> primer
<400> 89
gctagcaacc accatggcgg taattttaaa agcatatttt tttttgaaat tc 52
<210> 90
<211> 41
<212> DNA
<213> artificial
<220>
<223> primer
<400> 90
ccgggatgta gaaggccacc taaagatacc atggatgtat g 41
<210> 91
<211> 31
<212> DNA
<213> artificial
<220>
<223> primer
<400> 91
cagtcagtca cgagtttgtt accactgcga c 31
<210> 92
<211> 22
<212> DNA
<213> artificial
<220>
<223> primer
<400> 92
gcgggtggca gctggtgtac tg 22
<210> 93
<211> 21
<212> DNA
<213> artificial
<220>
<223> primer
<400> 93
gttgcaagtt gacactggcg g 21
<210> 94
<211> 23
<212> DNA
<213> artificial
<220>
<223> primer
<400> 94
aggtgtggga ggttttttaa agc 23
<210> 95
<211> 52
<212> DNA
<213> artificial
<220>
<223> primer
<400> 95
cctgtaatac gactcactat agggcgtttt tttttttttt tttttttttt tt 52
<210> 96
<211> 33
<212> DNA
<213> artificial
<220>
<223> primer
<400> 96
gcaaacggca atcagacggg cccaggctca gga 33
<210> 97
<211> 28
<212> DNA
<213> artificial
<220>
<223> primer
<400> 97
cctgtaatac gactcactat agggcgtt 28
<210> 98
<211> 37
<212> DNA
<213> artificial
<220>
<223> primer
<400> 98
gggatcgagc tagatcggcc tgagccgcca gtggtga 37
<210> 99
<211> 28
<212> DNA
<213> artificial
<220>
<223> primer
<400> 99
cctgtaatac gactcactat agggcgtt 28
<210> 100
<211> 32
<212> DNA
<213> artificial
<220>
<223> primer
<400> 100
cgctccatgg gatcggcgag ctgcgactcc gt 32
<210> 101
<211> 27
<212> DNA
<213> artificial
<220>
<223> primer
<400> 101
gcaacaacca gcggtgtccc ttgaaac 27
<210> 102
<211> 28
<212> DNA
<213> artificial
<220>
<223> primer
<400> 102
cctgtaatac gactcactat agggcgtt 28
<210> 103
<211> 28
<212> DNA
<213> artificial
<220>
<223> primer
<400> 103
gctagtggag aactgccaca aactgctg 28
<210> 104
<211> 34
<212> DNA
<213> artificial
<220>
<223> primer
<400> 104
caagcaaagt gaacacgtcg ctaagcgaaa gcta 34
<210> 105
<211> 25
<212> DNA
<213> artificial
<220>
<223> primer
<400> 105
gccctcgatg gtagacccgt aattg 25
<210> 106
<211> 14874
<212> DNA
<213> artificial
<220>
<223> LA1172 nucleotide sequence, including plasmid backbone
<400> 106






<210> 107
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 107
tcaataatcg tea 13
<210> 108
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 108
tcatcaaacg tea 13
<210> 109
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 109
ttatcgttaa aca 13
<210> 110
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 110
taaacagtca ata 13
<210> 111
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 111
tacacgatca gca 13
<210> 112
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 112
aatacaaaca aca 13
<210> 113
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 113
tcatcaacaa gca 13
<210> 114
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 114
tctacaaacc aga 13
<210> 115
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 115
acatcgattc aca 13
<210> 116
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 116
cgctcaatca aca 13
<210> 117
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 117
tctaccataa aaa 13
<210> 118
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 118
aaatgaatca aca 13
<210> 119
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 119
acatcgttca acg 13
<210> 120
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 120
tcttgattca cca 13
<210> 121
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 121
tctgcagaca aca 13
<210> 122
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 122
tcttcggtaa tea 13
<210> 123
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 123
tctataaaca ata 13
<210> 124
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 124
taaacaataa ata 13
<210> 125
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 125
taaacaagca aaa 13
<210> 126
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 126
tcaacgatcg gcg 13
<210> 127
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 127
tgatccatca tca 13
<210> 128
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 128
tcaacatgca aga 13
<210> 129
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 129
tcttaaataa aga 13
<210> 130
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 130
tcaaagatct ata 13
<210> 131
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 131
taatgaatta aca 13
<210> 132
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 132
tttaccatca act 13
<210> 133
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 133
taatgaaaca aca 13
<210> 134
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 134
gtttcaatta aaa 13
<210> 135
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 135
tattcaatta taa 13
<210> 136
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 136
tcttcaatcg ttt 13
<210> 137
<211> 13
<212> DNA
<213> Drosophila sp.
<400> 137
tcaacgatcc ttt 13
<210> 138
<211> 13
<212> DNA
<213> artificial
<220>
<223> Table 2 consensus sequence
<400> 138
tcwwcratca aca 13
<210> 139
<211> 34
<212> DNA
<213> artificial
<220>
<223> primer HSP
<400> 139
caagcaaagt gaacacgtcg ctaagcgaaa gcta 34
<210> 140
<211> 25
<212> DNA
<213> artificial
<220>
<223> VP16 primer
<400> 140
gccctcgatg gtagacccgt aattg 25
<210> 141
<211> 24
<212> DNA
<213> artificial
<220>
<223> primer Agexon1F
<400> 141
ggaaaccgag gataacgacg aagg 24
<210> 142
<211> 24
<212> DNA
<213> artificial
<220>
<223> primer TETRR1
<400> 142
gcggaacgac ttggcgttat tgcg 24
<210> 143
<211> 6243
<212> DNA
<213> artificial
<220>
<223> LA3576 plasmid sequence
<400> 143




<210> 144
<211> 5746
<212> DNA
<213> artificial
<220>
<223> LA3582 plasmid sequence
<400> 144



<210> 145
<211> 15121
<212> DNA
<213> artificial
<220>
<223> LA3596 plasmid sequence
<400> 145






<210> 146
<211> 533
<212> DNA
<213> artificial
<220>
<223> 146 PBW dsx fragment (Fig 6)
<400> 146

<210> 147
<211> 611
<212> DNA
<213> artificial
<220>
<223> Bombyx-dsx fragment (Fig 6)
<400> 147

<210> 148
<211> 570
<212> DNA
<213> artificial
<220>
<223> codling-dsx fragment (Fig 6)
<400> 148

<210> 149
<211> 4389
<212> DNA
<213> artificial
<220>
<223> DSX Minigene1 rom construct LA3491
<400> 149



<210> 150
<211> 2572
<212> DNA
<213> artificial
<220>
<223> DSX Minigene2 from construct LA3534
<400> 150


<210> 151
<211> 18790
<212> DNA
<213> artificial
<220>
<223> LA3619 whole plasmid sequence
<400> 151







<210> 152
<211> 19053
<212> DNA
<213> artificial
<220>
<223> LA3612 whole plasmid sequence
<400> 152







<210> 153
<211> 10540
<212> DNA
<213> artificial
<220>
<223> LA3491 plasmid sequence
<400> 153





<210> 154
<211> 4446
<212> DNA
<213> artificial
<220>
<223> LA3515 plasmid sequence
<400> 154


<210> 155
<211> 12991
<212> DNA
<213> artificial
<220>
<223> LA3545 Plasmid sequence
<400> 155





<210> 156
<211> 18411
<212> DNA
<213> artificial
<220>
<223> LA3604 Plasmid sequence
<400> 156








<210> 157
<211> 18073
<212> DNA
<213> artificial
<220>
<223> LA3646 Plasmid sequence
<400> 157







<210> 158
<211> 13293
<212> DNA
<213> artificial
<220>
<223> LA3054 plasmid sequence
<400> 158






<210> 159
<211> 13515
<212> DNA
<213> artificial
<220>
<223> LA3056 plasmid sequence
<400> 159





<210> 160
<211> 9423
<212> DNA
<213> artificial
<220>
<223> LA3488 plasmid sequence
<400> 160





<210> 161
<211> 17781
<212> DNA
<213> artificial
<220>
<223> LA3641plasmid sequence
<400> 161







<210> 162
<211> 15482
<212> DNA
<213> artificial
<220>
<223> LA3570 plasmid sequence
<220>
<221> misc_feature
<222> (1875).. (1875)
<223> n is a, c, g, or t
<400> 162





